Thursday, November 13, 2008

Water

Water in three states: liquid, solid (ice), and (invisible) vapor in air. Clouds are droplets of liquid, condensed from water vapor.
Water is a common chemical substance that is essential for the survival of all known forms of life. In typical usage, water refers only to its liquid form or state, but the substance also has a solid state, ice, and a gaseous state, water vapor or steam. About 1.460 petatonnes (Pt) (1021kilograms) of water covers 71% of the Earth's surface, mostly in oceans and other large water bodies, with 1.6% of water below ground in aquifers and 0.001% in the air as vapor, clouds (formed of solid and liquid water particles suspended in air), and precipitation.[1] Saltwater oceans hold 97% of surface water, glaciers and polar ice caps 2.4%, and other land surface water such as rivers, lakes and ponds 0.6%. A very small amount of the Earth's water is contained within water towers, biological bodies, manufactured products, and food stores. Other water is trapped in ice caps, glaciers, aquifers, or in lakes, sometimes providing fresh water for life on land.
Water moves continually through a cycle of evaporation or transpiration (evapotranspiration), precipitation, and runoff, usually reaching the sea. Winds carry water vapor over land at the same rate as runoff into the sea, about 36 Tt (1012kilograms) per year. Over land, evaporation and transpiration contribute another 71 Tt per year to the precipitation of 107 Tt per year over land. Clean, fresh drinking water is essential to human and other life. However, in many parts of the world—especially developing countries—there is a water crisis, and it is estimated that by 2025 more than half of the world population will be facing water-based vulnerability.[2] Water plays an important role in the world economy, as it functions as a solvent for a wide variety of chemical substances and facilitates industrial cooling and transportation. Approximately 70% of freshwater is consumed by agriculture.[3]
Contents[hide]
1 Types of water
2 Chemical and physical properties
3 Distribution of water in nature
3.1 Water in the Universe
3.2 Water and habitable zone
4 Water on Earth
4.1 Water cycle
4.2 Fresh water storage
4.3 Tides
5 Effects on life
5.1 Aquatic life forms
6 Effects on human civilization
6.1 Health and pollution
6.2 Human uses
6.2.1 Agriculture
6.2.2 As a scientific standard
6.2.3 For drinking
6.2.4 As a dissolving agent or solvent
6.2.5 As a heat transfer fluid
6.2.6 Extinguishing fires
6.2.7 Chemical uses
6.2.8 Recreation
6.2.9 Water industry
6.2.10 Industrial applications
6.2.11 Food processing
7 Water politics and water crisis
8 Religion, philosophy, and literature
9 See also
10 References
11 Further reading
11.1 Water as a natural resource
12 External links
//

Types of water

Liquid water in motion
Water can appear in three states; it is one of the very few substances to be found naturally in all three states on earth. Water takes many different forms on Earth: water vapor and clouds in the sky; seawater and rarely icebergs in the ocean; glaciers and rivers in the mountains; and the liquid in aquifers in the ground.
Water can dissolve many different substances, giving it different tastes and odors. In fact, humans and other animals have developed senses which are, to a degree, able to evaluate the potability of water, avoiding water that is too salty or putrid. Humans also tend to prefer cold water to lukewarm; cold water is likely to contain fewer microbes. The taste advertised in spring water or mineral water derives from the minerals dissolved in it, as pure H2O is tasteless. As such, purity in spring and mineral water refers to purity from toxins, pollutants, and microbes.
Different names are given to water's various forms:

Snowflakes by Wilson Bentley, 1902
according to state
solid - ice
liquid - water
gaseous - water vapor
according to meteorology:
hydrometeor
precipitation

precipitation according to moves

precipitation according to state

vertical (falling) precipitation
rain
freezing rain
drizzle
freezing drizzle
snow
snow pellets
snow grains
ice pellets
frozen rain
hail
ice crystals
horizontal (seated) precipitation
dew
hoarfrost
atmospheric icing
glaze ice

liquid precipitation
rain
freezing rain
drizzle
freezing drizzle
dew
solid precipitation
snow
snow pellets
snow grains
ice pellets
frozen rain
hail
ice crystals
hoarfrost
atmospheric icing
glaze ice
mixed precipitation
in temperatures around 0 °C
levitating particles
clouds
fog
BR (according to METAR)
ascending particles (drifted by wind)
spindrift
stirred snow
according to occurrence
groundwater
meltwater
meteoric water
connate water
fresh water
surface water
mineral water – contains much minerals
brackish water
dead water – strange phenomenon which can occur when a layer of fresh or brackish water rests on top of more dense salt water, without the two layers mixing. It is dangerous for ship traveling.
seawater
brine
according to uses
tap water
bottled water
drinking water or potable water – useful for everyday drinking, without fouling, it contains balanced minerals that are not harmful to health (see below)
purified water, laboratory-grade, analytical-grade or reagent-grade water – water which has been highly purified for specific uses in science or engineering. Often broadly classified as Type I, Type II, or Type III, this category of water includes, but is not limited to the following:
distilled water
double distilled water
deionized water
according to other features
soft water – contains less minerals
hard water – from underground, contains more minerals
distilled water, double distilled water, deionized water - contains no minerals
Water of crystallization — water incorporated into crystalline structures
Hydrates — water bound into other chemical substances
heavy water – made from heavy atoms of hydrogen - deuterium. It is in nature in normal water in very low concentration. It was used in construction of first nuclear reactors.
tritiated water
according to microbiology
drinking water
wastewater
stormwater or surface water
according to religion
holy water

Chemical and physical properties
Water

Water is a necessary solvent for all known life, andan abundant compound on the earth's surface.
Information and properties
Common name
water
IUPAC name
oxidane
Alternative names
aqua, dihydrogen monoxide,hydrogen hydroxide, (more)
Molecular formula
H2O
CAS number
7732-18-5
InChI
InChI=1/H2O/h1H2
Molar mass
18.0153 g/mol
Density and phase
0.998 g/cm³ (liquid at 20 °C, 1 atm)0.917 g/cm³ (solid at 0 °C, 1 atm)
Melting point
0 °C (273.15 K) (32 °F)
Boiling point
99.974 °C (373.124 K) (211.95 °F)
Specific heat capacity
4.184 J/(g·K) (liquid at 20 °C)74.539 J/ (mol·K) (liquid at 25 °C)
Supplementary data page
Disclaimer and references
Main article: Water (molecule)

model of hydrogen bonds between molecules of water

Impact from a water drop causes an upward "rebound" jet surrounded by circular capillary waves.

Dew drops adhering to a spider web

capillary action of water compared to mercury
Water is the chemical substance with chemical formula H2O: one molecule of water has two hydrogen atoms covalently bonded to a single oxygen atom.
The major chemical and physical properties of water are:
Water is a tasteless, odorless liquid at ambient temperature and pressure. The color of water and ice is, intrinsically, a very light blue hue, although water appears colorless in small quantities. Ice also appears colorless, and water vapor is essentially invisible as a gas.[4]
Water is transparent, and thus aquatic plants can live within the water because sunlight can reach them. Only strong UV light is slightly absorbed.
Since oxygen has a higher electronegativity than hydrogen, water is a polar molecule. The oxygen has a slight negative charge while the hydrogens have a slight positive charge giving the article a strong effective dipole moment. The interactions between the different dipoles of each molecule cause a net attraction force associated with water's high amount of surface tension.
Another very important force that causes the water molecules to stick to one another is the hydrogen bond.[5]
The boiling point of water (and all other liquids) is directly related to the barometric pressure. For example, on the top of Mt. Everest water boils at about 68 °C (154 °F), compared to 100 °C (212 °F) at sea level. Conversely, water deep in the ocean near geothermal vents can reach temperatures of hundreds of degrees and remain liquid.
Water sticks to itself. Water has a high surface tension caused by the strong cohesion between water molecules because it is polar. The apparent elasticity caused by surface tension drives the capillary waves.
Water also has high adhesion properties because of its polar nature.
Capillary action refers to the tendency of water to move up a narrow tube against the force of gravity. This property is relied upon by all vascular plants, such as trees.
Water is a very strong solvent, referred to as the universal solvent, dissolving many types of substances. Substances that will mix well and dissolve in water, e.g. salts, sugars, acids, alkalis, and some gases: especially oxygen, carbon dioxide (carbonation), are known as "hydrophilic" (water-loving) substances, while those that do not mix well with water (e.g. fats and oils), are known as "hydrophobic" (water-fearing) substances.
All the major components in cells (proteins, DNA and polysaccharides) are also dissolved in water.
Pure water has a low electrical conductivity, but this increases significantly upon solvation of a small amount of ionic material such as sodium chloride.
Water has the second highest specific heat capacity of any known chemical compound, after ammonia, as well as a high heat of vaporization (40.65 kJ mol−1), both of which are a result of the extensive hydrogen bonding between its molecules. These two unusual properties allow water to moderate Earth's climate by buffering large fluctuations in temperature.
The maximum density of water is at 3.98 °C (39.16 °F).[6] Water becomes even less dense upon freezing, expanding 9%. This causes an unusual phenomenon: ice floats upon water, and so water organisms can live inside a partly frozen pond because the water on the bottom has a temperature of around 4 °C (39 °F).

ADR label for transporting goods dangerously reactive with water
Water is miscible with many liquids, for example ethanol, in all proportions, forming a single homogeneous liquid. On the other hand, water and most oils are immiscible usually forming layers according to increasing density from the top. As a gas, water vapor is completely miscible with air.
Water forms an azeotrope with many other solvents.
Water can be split by electrolysis into hydrogen and oxygen.
As an oxide of hydrogen, water is formed when hydrogen or hydrogen-containing compounds burn or react with oxygen or oxygen-containing compounds. Water is not a fuel, it is an end-product of the combustion of hydrogen. The energy required to split water into hydrogen and oxygen by electrolysis or any other means is greater than the energy released when the hydrogen and oxygen recombine.[7]
Elements which are more electropositive than hydrogen such as lithium, sodium, calcium, potassium and caesium displace hydrogen from water, forming hydroxides. Being a flammable gas, the hydrogen given off is dangerous and the reaction of water with the more electropositive of these elements is violently explosive.

Distribution of water in nature

Water in the Universe
Much of the universe's water may be produced as a byproduct of star formation. When stars are born, their birth is accompanied by a strong outward wind of gas and dust. When this outflow of material eventually impacts the surrounding gas, the shock waves that are created compress and heat the gas. The water observed is quickly produced in this warm dense gas.[8]
Water has been detected in interstellar clouds within our galaxy, the Milky Way. It is believed that water exists in abundance in other galaxies too, because its components, hydrogen and oxygen, are among the most abundant elements in the universe. Interstellar clouds eventually condense into solar nebulae and solar systems, such as ours.
Water vapor is present on:
Mercury - 3.4% in the atmosphere, and large amounts of water in Mercury's exosphere[9]
Venus - 0.002% in the atmosphere
Earth - trace in the atmosphere (varies with climate)
Mars - 0.03% in the atmosphere
Jupiter - 0.0004% in the atmosphere
Saturn - in ices only
Enceladus (moon of Saturn) - 91% in the atmosphere
exoplanets known as HD 189733 b[10] and HD 209458 b.[11]
Liquid water is present on:
Earth - 71% of surface
Moon - small amounts of water have been found (in 2008) in the inside of volcanic pearls brought from Moon to Earth by the Apollo 15 crew in 1971.[12]
Strong evidence suggests that liquid water is present just under the surface of Saturn's moon Enceladus. Probably some liquid water is on Europa.
Water ice is present on:
Earth - mainly on ice sheets
polar ice caps on Mars
Titan
Europa
Enceladus
Probability or possibility of distribution of water ice is at: lunar ice on the Moon, Ceres (dwarf planet), Tethys (moon). Ice is probably in internal structure of Uranus, Neptune, and Pluto and on comets.

Water and habitable zone

The Solar System along center row range of possible habitable zones of varying size stars.
The existence of liquid water, and to a lesser extent its gaseous and solid forms, on Earth is vital to the existence of life on Earth as we know it. The Earth is located in the habitable zone of the solar system; if it were slightly closer to or further from the Sun (about 5%, or about 8 million kilometres), the conditions which allow the three forms to be present simultaneously would be far less likely to exist.[13]
Earth's mass allows gravity to hold an atmosphere. Water vapor and carbon dioxide in the atmosphere provide a greenhouse effect which helps maintain a relatively steady surface temperature. If Earth were smaller, a thinner atmosphere would cause temperature extremes preventing the accumulation of water except in polar ice caps (as on Mars).
It has been proposed that life itself may maintain the conditions that have allowed its continued existence. The surface temperature of Earth has been relatively constant through geologic time despite varying levels of incoming solar radiation (insolation), indicating that a dynamic process governs Earth's temperature via a combination of greenhouse gases and surface or atmospheric albedo. This proposal is known as the Gaia hypothesis.
The state of water also depends on a planet's gravity. If a planet is sufficiently massive, the water on it may be solid even at high temperatures, because of the high pressure caused by gravity.
There are various theories about origin of water on Earth.

Water on Earth
Main articles: Hydrology and Water distribution on Earth

Water covers 71% of the Earth's surface; the oceans contain 97.2% of the Earth's water. The Antarctic ice sheet, which contains 90% of all fresh water on Earth, is visible at the bottom. Condensed atmospheric water can be seen as clouds, contributing to the Earth's albedo.
Hydrology is the study of the movement, distribution, and quality of water throughout the Earth. The study of the distribution of water is hydrography. The study of the distribution and movement of groundwater is hydrogeology, of glaciers is glaciology, of inland waters is limnology and distribution of oceans is oceanography. Ecological processes with hydrology are in focus of ecohydrology.
The collective mass of water found on, under, and over the surface of a planet is called hydrosphere. Earth's approximate water volume (the total water supply of the world) is 1 360 000 000 km³ (326 000 000 mi³). Of this volume:
1 320 000 000 km³ (316 900 000 mi³ or 97.2%) is in the oceans.
25 000 000 km³ (6 000 000 mi³ or 1.8%) is in glaciers, ice caps and ice sheets.
13 000 000 km³ (3,000,000 mi³ or 0.9%) is groundwater.
250 000 km³ (60,000 mi³ or 0.02%) is fresh water in lakes, inland seas, and rivers.
13 000 km³ (3,100 mi³ or 0.001%) is atmospheric water vapor at any given time.
Groundwater and fresh water are useful or potentially useful to humans as water resources.
Liquid water is found in bodies of water, such as an ocean, sea, lake, river, stream, canal, pond, or puddle. The majority of water on Earth is sea water. Water is also present in the atmosphere in solid, liquid, and vapor states. It also exists as groundwater in aquifers.
The most important geological processes caused by water are: chemical weathering, water erosion, water sediment transport and sedimentation, mudflows, ice erosion and sedimentation by glacier.

Water cycle
Main article: Water cycle

Water cycle.
The water cycle (known scientifically as the hydrologic cycle) refers to the continuous exchange of water within the hydrosphere, between the atmosphere, soil water, surface water, groundwater, and plants.
Water moves perpetually through each of these regions in the water cycle consisting of following transfer processes:
evaporation from oceans and other water bodies into the air and transpiration from land plants and animals into air.
precipitation, from water vapor condensing from the air and falling to earth or ocean.
runoff from the land usually reaching the sea.
Most water vapor over the oceans returns to the oceans, but winds carry water vapor over land at the same rate as runoff into the sea, about 36 Tt per year. Over land, evaporation and transpiration contribute another 71 Tt per year. Precipitation, at a rate of 107 Tt per year over land, has several forms: most commonly rain, snow, and hail, with some contribution from fog and dew. Condensed water in the air may also refract sunlight to produce rainbows.
Water runoff often collects over watersheds flowing into rivers. A mathematical model used to simulate river or stream flow and calculate water quality parameters is hydrological transport model. Some of water is diverted to irrigation for agriculture. Rivers and seas offer opportunity for travel and commerce. Through erosion, runoff shapes the environment creating river valleys and deltas which provide rich soil and level ground for the establishment of population centers. A flood occurs when an area of land, usually low-lying, is covered with water. It is when a river overflows its banks or flood from the sea. A drought is an extended period of months or years when a region notes a deficiency in its water supply. This occurs when a region receives consistently below average precipitation.

Fresh water storage
Main article: Water resources
Some runoff water is trapped for periods, for example in lakes. At high altitude, during winter, and in the far north and south, snow collects in ice caps, snow pack and glaciers. Water also infiltrates the ground and goes into aquifers. This groundwater later flows back to the surface in springs, or more spectacularly in hot springs and geysers. Groundwater is also extracted artificially in wells. This water storage is important, since clean, fresh water is essential to human and other land-based life. In many parts of the world, it is in short supply.

Tides

High tide (left) and low tide (right).
Main article: Tide
Tides are the cyclic rising and falling of Earth's ocean surface caused by the tidal forces of the Moon and the Sun acting on the oceans. Tides cause changes in the depth of the marine and estuarine water bodies and produce oscillating currents known as tidal streams. The changing tide produced at a given location is the result of the changing positions of the Moon and Sun relative to the Earth coupled with the effects of Earth rotation and the local bathymetry. The strip of seashore that is submerged at high tide and exposed at low tide, the intertidal zone, is an important ecological product of ocean tides.

Effects on life

An oasis is an isolated water source with vegetation in desert

Some of the biodiversity of a coral reef

Water reflecting light in Crissy Field
From a biological standpoint, water has many distinct properties that are critical for the proliferation of life that set it apart from other substances. It carries out this role by allowing organic compounds to react in ways that ultimately allow replication. All known forms of life depend on water. Water is vital both as a solvent in which many of the body's solutes dissolve and as an essential part of many metabolic processes within the body. Metabolism is the sum total of anabolism and catabolism. In anabolism, water is removed from molecules (through energy requiring enzymatic chemical reactions) in order to grow larger molecules (e.g. starches, triglycerides and proteins for storage of fuels and information). In catabolism, water is used to break bonds in order to generate smaller molecules (e.g. glucose, fatty acids and amino acids to be used for fuels for energy use or other purposes). Water is thus essential and central to these metabolic processes. Therefore, without water, these metabolic processes would cease to exist, leaving us to muse about what processes would be in its place, such as gas absorption, dust collection, etc.
Water is also central to photosynthesis and respiration. Photosynthetic cells use the sun's energy to split off water's hydrogen from oxygen. Hydrogen is combined with CO2 (absorbed from air or water) to form glucose and release oxygen. All living cells use such fuels and oxidize the hydrogen and carbon to capture the sun's energy and reform water and CO2 in the process (cellular respiration).
Water is also central to acid-base neutrality and enzyme function. An acid, a hydrogen ion (H+, that is, a proton) donor, can be neutralized by a base, a proton acceptor such as hydroxide ion (OH−) to form water. Water is considered to be neutral, with a pH (the negative log of the hydrogen ion concentration) of 7. Acids have pH values less than 7 while bases have values greater than 7. Stomach acid (HCl) is useful to digestion. However, its corrosive effect on the esophagus during reflux can temporarily be neutralized by ingestion of a base such as aluminum hydroxide to produce the neutral molecules water and the salt aluminum chloride. Human biochemistry that involves enzymes usually performs optimally around a biologically neutral pH of 7.4.
For example a cell of Escherichia coli contains 70% of water, a human body 60–70%, plant body up to 90% and the body of an adult jellyfish is made up of 94–98% water.

Aquatic life forms
Main articles: Hydrobiology and Aquatic plant

Some marine diatoms - a key phytoplankton group
Earth's waters are filled with life. The earliest life forms appeared in water; nearly all fish live exclusively in water, and there are many types of marine mammals, such as dolphins and whales that also live in the water. Some kinds of animals, such as amphibians, spend portions of their lives in water and portions on land. Plants such as kelp and algae grow in the water and are the basis for some underwater ecosystems. Plankton is generally the foundation of the ocean food chain.
Aquatic animals must obtain oxygen to survive, and they do so in various ways. Fish have gills instead of lungs, although some species of fish, such as the lungfish, have both. Marine mammals, such as dolphins, whales, otters, and seals need to surface periodically to breathe air. Smaller life forms are able to absorb oxygen through their skin.

Effects on human civilization

Water Fountain
Civilization has historically flourished around rivers and major waterways; Mesopotamia, the so-called cradle of civilization, was situated between the major rivers Tigris and Euphrates; the ancient society of the Egyptians depended entirely upon the Nile. Large metropolises like Rotterdam, London, Montreal, Paris, New York City, Shanghai, Tokyo, Chicago, and Hong Kong owe their success in part to their easy accessibility via water and the resultant expansion of trade. Islands with safe water ports, like Singapore, have flourished for the same reason. In places such as North Africa and the Middle East, where water is more scarce, access to clean drinking water was and is a major factor in human development.

Health and pollution

Environmental Scientist sampling water.
Water fit for human consumption is called drinking water or potable water. Water that is not potable can be made potable by filtration or distillation (heating it until it becomes water vapor, and then capturing the vapor without any of the impurities it leaves behind), or by other methods (chemical or heat treatment that kills bacteria). Sometimes the term safe water is applied to potable water of a lower quality threshold (i.e., it is used effectively for nutrition in humans that have weak access to water cleaning processes, and does more good than harm). Water that is not fit for drinking but is not harmful for humans when used for swimming or bathing is called by various names other than potable or drinking water, and is sometimes called safe water, or "safe for bathing". Chlorine is a skin and mucous membrane irritant that is used to make water safe for bathing or drinking. Its use is highly technical and is usually monitored by government regulations (typically 1 part per million (ppm) for drinking water, and 1–2 ppm of chlorine not yet reacted with impurities for bathing water).
This natural resource is becoming scarcer in certain places, and its availability is a major social and economic concern. Currently, about 1 billion people around the world routinely drink unhealthy water. Most countries accepted the goal of halving by 2015 the number of people worldwide who do not have access to safe water and sanitation during the 2003 G8 Evian summit.[14] Even if this difficult goal is met, it will still leave more than an estimated half a billion people without access to safe drinking water and over 1 billion without access to adequate sanitation. Poor water quality and bad sanitation are deadly; some 5 million deaths a year are caused by polluted drinking water. The World Health Organization estimates that safe water could prevent 1.4 million child deaths from diarrhea each year.[15] Water, however, is not a finite resource, but rather re-circulated as potable water in precipitation in quantities many degrees of magnitude higher than human consumption. Therefore, it is the relatively small quantity of water in reserve in the earth (about 1% of our drinking water supply, which is replenished in aquifers around every 1 to 10 years), that is a non-renewable resource, and it is, rather, the distribution of potable and irrigation water which is scarce, rather than the actual amount of it that exists on the earth. Water-poor countries use importation of goods as the primary method of importing water (to leave enough for local human consumption), since the manufacturing process uses around 10 to 100 times products' masses in water.
In the developing world, 90% of all wastewater still goes untreated into local rivers and streams.[16] Some 50 countries, with roughly a third of the world’s population, also suffer from medium or high water stress, and 17 of these extract more water annually than is recharged through their natural water cycles.[17] The strain not only affects surface freshwater bodies like rivers and lakes, but it also degrades groundwater resources.

Human uses

Agriculture

irrigation of field crops
The most important use of water in agriculture is for an irrigation and irrigation is key component to produce enough food. Irrigation takes up to 90% of water withdrawn in some developing countries.[18]

As a scientific standard
On 7 April 1795, the gram was defined in France to be equal to "the absolute weight of a volume of pure water equal to a cube of one hundredth of a meter, and to the temperature of the melting ice."[19] For practical purposes though, a metallic reference standard was required, one thousand times more massive, the kilogram. Work was therefore commissioned to determine precisely how massive one liter of water was. In spite of the fact that the decreed definition of the gram specified water at 0 °C—a highly stable temperature point—the scientists chose to redefine the standard and to perform their measurements at the most stable density point: the temperature at which water reaches maximum density, which was measured at the time as 4 °C.[20]
The Kelvin temperature scale of the SI system is based on the triple point of water, defined as exactly 273.16 K or 0.01 °C. The scale is a more accurate development of the Celsius temperature scale, which is defined by the boiling point (100 °C) and melting point (0 °C) of water.
Natural water consists mainly of the isotopes hydrogen-1 and oxygen-16, but there is also small quantity of heavier isotopes such as hydrogen-2 (deuterium). The amount of deuterium oxides or heavy water is very small, but it still affects the properties of water. Water from rivers and lakes tends to contain less deuterium than seawater. Therefore, a standard water called Vienna Standard Mean Ocean Water is defined as the standard water.

For drinking

A young girl drinking bottled water.
Main article: Drinking water
The human body is anywhere from 55% to 78% water depending on body size.[21] To function properly, the body requires between one and seven liters of water per day to avoid dehydration; the precise amount depends on the level of activity, temperature, humidity, and other factors. Most of this is ingested through foods or beverages other than drinking straight water. It is not clear how much water intake is needed by healthy people, though most advocates agree that 6–7 glasses of water (approximately 2 litres) daily is the minimum to maintain proper hydration.[22] Medical literature favors a lower consumption, typically 1 liter of water for an average male, excluding extra requirements due to fluid loss from exercise or warm weather.[23] For those who have healthy kidneys, it is rather difficult to drink too much water, but (especially in warm humid weather and while exercising) it is dangerous to drink too little. People can drink far more water than necessary while exercising, however, putting them at risk of water intoxication (hyperhydration), which can be fatal. The "fact" that a person should consume eight glasses of water per day cannot be traced back to a scientific source.[24] There are other myths such as the effect of water on weight loss and constipation that have been dispelled.[25]
An original recommendation for water intake in 1945 by the Food and Nutrition Board of the National Research Council read: "An ordinary standard for diverse persons is 1 milliliter for each calorie of food. Most of this quantity is contained in prepared foods."[26] The latest dietary reference intake report by the United States National Research Council in general recommended (including food sources): 2.7 liters of water total for women and 3.7 liters for men.[27] Specifically, pregnant and breastfeeding women need additional fluids to stay hydrated. According to the Institute of Medicine—who recommend that, on average, women consume 2.2 litres and men 3.0 litres—this is recommended to be 2.4 litres (approx. 9 cups) for pregnant women and 3 litres (approx. 12.5 cups) for breastfeeding women since an especially large amount of fluid is lost during nursing.[28] Also noted is that normally, about 20 percent of water intake comes from food, while the rest comes from drinking water and beverages (caffeinated included). Water is excreted from the body in multiple forms; through urine and feces, through sweating, and by exhalation of water vapor in the breath. With physical exertion and heat exposure, water loss will increase and daily fluid needs may increase as well.

Hazard symbol for No drinking water
Humans require water that does not contain too many impurities. Common impurities include metal salts and/or harmful bacteria, such as Vibrio. Some solutes are acceptable and even desirable for taste enhancement and to provide needed electrolytes.[29]
The single largest freshwater resource suitable for drinking is Lake Baikal in Siberia, which has a very low salt and calcium content and is very clean.

As a dissolving agent or solvent
Dissolving (or suspending) is used to wash everyday items such as the human body, clothes, floors, cars, food, and pets. Also, human wastes are carried by water in the sewage system. Its use as a cleaning solvent consumes most of water in industrialized countries.
Water can facilitate the chemical processing of wastewater. An aqueous environment can be favourable to the breakdown of pollutants, due to the ability to gain an homogenous solution that is pumpable and flexible to treat. Aerobic treatment can be used by applying oxygen or air to a solution reduce the reactivity of substances within it.
Water also facilitates biological processing of waste that have been dissolved within it. Microorganisms that live within water can access dissolved wastes and can feed upon them breaking them down into less polluting substances. Reedbeds and anaerobic digesters are both examples of biological systems that are particularly suited to the treatment of effluents.
Typically from both chemical and biological treatment of wastes, there is often a solid residue or cake that is left over from the treatment process. Depending upon its constituent parts, this 'cake' may be dried and spread on land as a fertilizer if it has beneficial properties, or alternatively disposed of in landfill or incinerated.

As a heat transfer fluid

Ice used for cooling.
Water and steam are used as heat transfer fluids in diverse heat exchange systems, due to its availability and high heat capacity, both as a coolant and for heating. Cool water may even be naturally available from a lake or the sea. Condensing steam is a particularly efficient heating fluid because of the large heat of vaporization. A disadvantage is that water and steam are somewhat corrosive. In almost all electric power plants, water is the coolant, which vaporizes and drives steam turbines to drive generators.
In the nuclear industry, water can also be used as a neutron moderator. In a pressurized water reactor, water is both a coolant and a moderator. This provides a passive safety measure, as removing the water from the reactor also slows the nuclear reaction down.

Extinguishing fires

Water is used for fighting wildfires.
Water has a high heat of vaporization and is relatively inert, which makes it a good fire extinguishing fluid. The evaporation of water carries heat away from the fire. However, water cannot be used to fight fires of electric equipment, because impure water is electrically conductive, or of oils and organic solvents, because they float on water and the explosive boiling of water tends to spread the burning liquid.
Use of water in fire fighting should also take into account the hazards of a steam explosion, which may occur when water is used on very hot fires in confined spaces, and of a hydrogen explosion, when substances which react with water, such as certain metals or hot graphite, decompose the water, producing hydrogen gas.
The power of such explosions was seen in the Chernobyl disaster, although the water involved did not come from fire-fighting at that time but the reactor's own water cooling system. A steam explosion occurred when the extreme over-heating of the core caused water to flash into steam. A hydrogen explosion may have occurred as a result of reaction between steam and hot zirconium.

Chemical uses
Organic reactions are usually quenched with water or a water solution of a suitable acid, base or buffer. Water is generally effective in removing inorganic salts. In inorganic reactions, water is a common solvent. In organic reactions, it is usually not used as a reaction solvent, because it does not dissolve the reactants well and is amphoteric (acidic and basic) and nucleophilic. Nevertheless, these properties are sometimes desirable. Also, acceleration of Diels-Alder reactions by water has been observed. Supercritical water has recently been a topic of research. Oxygen-saturated supercritical water combusts organic pollutants efficiently.

Recreation
Main article: Water sport (recreation)
Humans use water for many recreational purposes, as well as for exercising and for sports. Some of these include swimming, waterskiing, boating, and diving. In addition, some sports, like ice hockey and ice skating, are played on ice. Lakesides, beaches and waterparks are popular places for people to go to relax and enjoy recreation. Many find the sound of flowing water to be calming, too. Some keep fish and other life in aquariums or ponds for show, fun, and companionship. Humans also use water for snow sports i.e. skiing or snowboarding, which requires the water to be frozen. People may also use water for play fighting such as with snowballs, water guns or water balloons. They may also make fountains and use water in their public or private decorations.

Water industry
Main articles: Water industry and :Category:Water supply and sanitation by country

A water-carrier in India,1882. In many places where running water is not available, water has to be transported by people.
The water industry provides drinking water and wastewater services (including sewage treatment) to households and industry.

A manual water pump in China

water purification facility

Water used in landscaping.
Water supply facilities includes for example water wells cisterns for rainwater harvesting, water supply network, water purification facilities, water tanks, water towers, water pipes including old aqueducts. Atmospheric water generator is in development.
Drinking water is often collected at springs, extracted from artificial borings in the ground, or wells. Building more wells in adequate places is thus a possible way to produce more water, assuming the aquifers can supply an adequate flow. Other water sources are rainwater and river or lake water. This surface water, however, must be purified for human consumption. This may involve removal of undissolved substances, dissolved substances and harmful microbes. Popular methods are filtering with sand which only removes undissolved material, while chlorination and boiling kill harmful microbes. Distillation does all three functions. More advanced techniques exist, such as reverse osmosis. Desalination of abundant ocean or seawater is a more expensive solution used in coastal arid climates.
The distribution of drinking water is done through municipal water systems or as bottled water. Governments in many countries have programs to distribute water to the needy at no charge. Others argue that the market mechanism and free enterprise are best to manage this rare resource and to finance the boring of wells or the construction of dams and reservoirs.
Reducing waste by using drinking water only for human consumption is another option. In some cities such as Hong Kong, sea water is extensively used for flushing toilets citywide in order to conserve fresh water resources.
Polluting water may be the biggest single misuse of water; to the extent that a pollutant limits other uses of the water, it becomes a waste of the resource, regardless of benefits to the polluter. Like other types of pollution, this does not enter standard accounting of market costs, being conceived as externalities for which the market cannot account. Thus other people pay the price of water pollution, while the private firms' profits are not redistributed to the local population victim of this pollution. Pharmaceuticals consumed by humans often end up in the waterways and can have detrimental effects on aquatic life if they bioaccumulate and if they are not biodegradable.
Wastewater facilities are sewers and wastewater treatment plants. Another way to remove pollution from surface runoff water is bioswale.

Industrial applications

Three Gorges Dam is the largest hydro-electric power station
Water is used in power generation. Hydroelectricity is electricity obtained from hydropower. Hydroelectric power comes from water driving a water turbine connected to a generator. Hydroelectricity is a low-cost, non-polluting, renewable energy source. The energy is supplied by the sun. Heat from the sun evaporates water, which condenses as rain in higher altitudes, from where it flows down.
Pressurized water is used in water blasting and water jet cutters. Also, very high pressure water guns are used for precise cutting. It works very well, is relatively safe, and is not harmful to the environment. It is also used in the cooling of machinery to prevent over-heating, or prevent saw blades from over-heating.
Water is also used in many industrial processes and machines, such as the steam turbine and heat exchanger, in addition to its use as a chemical solvent. Discharge of untreated water from industrial uses is pollution. Pollution includes discharged solutes (chemical pollution) and discharged coolant water (thermal pollution). Industry requires pure water for many applications and utilizes a variety of purification techniques both in water supply and discharge.

Food processing

Water can be used to cook foods such as noodles.
Water plays many critical roles within the field of food science. It is important for a food scientist to understand the roles that water plays within food processing to ensure the success of their products.
Solutes such as salts and sugars found in water affect the physical properties of water. The boiling and freezing points of water is affected by solutes. One mole of sucrose (sugar) raises the boiling point of water by 0.52 °C, and one mole of salt raises the boiling point by 1.04 °C while lowering the freezing point of water in a similar way.[30] Solutes in water also affect water activity which affects many chemical reactions and the growth of microbes in food.[31] Water activity can be described as a ratio of the vapor pressure of water in a solution to the vapor pressure of pure water.[30] Solutes in water lower water activity. This is important to know because most bacterial growth ceases at low levels of water activity.[31] Not only does microbial growth affect the safety of food but also the preservation and shelf life of food.
Water hardness is also a critical factor in food processing. It can dramatically affect the quality of a product as well as playing a role in sanitation. Water hardness is classified based on the amounts of removable calcium carbonate salt it contains per gallon. Water hardness is measured in grains; 0.064 g calcium carbonate is equivalent to one grain of hardness.[30] Water is classified as soft if it contains 1 to 4 grains, medium if it contains 5 to 10 grains and hard if it contains 11 to 20 grains.[vague] [30] The hardness of water may be altered or treated by using a chemical ion exchange system. The hardness of water also affects its pH balance which plays a critical role in food processing. For example, hard water prevents successful production of clear beverages. Water hardness also affects sanitation; with increasing hardness, there is a loss of effectiveness for its use as a sanitizer.[30]
Boiling, steaming, and simmering are popular cooking methods that often require immersing food in water or its gaseous state, steam. While cooking water is used for dishwashing too.

Water politics and water crisis
Main articles: Water politics and Water crisis
See also: Water resources, Water law, and Water right
Water politics is politics affected by water and water resources. Because of overpopulation, mass consumption, misuse, and water pollution, the availability of drinking water per capita is inadequate and shrinking as of the year 2006. For this reason, water is a strategic resource in the globe and an important element in many political conflicts. It causes health impacts and damage to biodiversity. The serious worldwide water situation is called water crisis.
UNESCO's World Water Development Report (WWDR, 2003) from its World Water Assessment Program indicates that, in the next 20 years, the quantity of water available to everyone is predicted to decrease by 30%. 40% of the world's inhabitants currently have insufficient fresh water for minimal hygiene. More than 2.2 million people died in 2000 from waterborne diseases (related to the consumption of contaminated water) or drought. In 2004, the UK charity WaterAid reported that a child dies every 15 seconds from easily preventable water-related diseases; often this means lack of sewage disposal; see toilet.
To halve, by 2015, the proportion of people without sustainable access to safe drinking water is one of the Millennium Development Goals.
Fresh water — now more precious than ever in our history for its extensive use in agriculture, high-tech manufacturing, and energy production — is increasingly receiving attention as a resource requiring better water management and sustainable use.
Organizations concerned in water protection include International Water Association (IWA), WaterAid, Water 1st, American Water Resources Association. Water related conventions are United Nations Convention to Combat Desertification (UNCCD), International Convention for the Prevention of Pollution from Ships, United Nations Convention on the Law of the Sea and Ramsar Convention. World Day for Water takes place at March 22 and World Ocean Day at June 8.
Water used in the production of a good or service is virtual water.

Religion, philosophy, and literature

A Hindu ablution as practiced in Tamil Nadu
Water is considered a purifier in most religions. Major faiths that incorporate ritual washing (ablution) include Christianity, Hinduism, Rastafarianism, Islam, Shinto, Taoism, and Judaism. Immersion (or aspersion or affusion) of a person in water is a central sacrament of Christianity (where it is called baptism); it is also a part of the practice of other religions, including Judaism (mikvah) and Sikhism (Amrit Sanskar). In addition, a ritual bath in pure water is performed for the dead in many religions including Judaism and Islam. In Islam, the five daily prayers can be done in most cases after completing washing certain parts of the body using clean water (wudu). In Shinto, water is used in almost all rituals to cleanse a person or an area (e.g., in the ritual of misogi). Water is mentioned in the Bible 442 times in the New International Version and 363 times in the King James Version: 2 Peter 3:5(b) states, "The earth was formed out of water and by water" (NIV).
Some faiths use water especially prepared for religious purposes (holy water in some Christian denominations, Amrita in Sikhism and Hinduism). Many religions also consider particular sources or bodies of water to be sacred or at least auspicious; examples include Lourdes in Roman Catholicism, the Jordan River (at least symbolically) in some Christian churches, the Zamzam Well in Islam and the River Ganges (among many others) in Hinduism.
Water is often believed to have spiritual powers. In Celtic mythology, Sulis is the local goddess of thermal springs; in Hinduism, the Ganges is also personified as a goddess, while Saraswati have been referred to as goddess in Vedas. Also water is one of the "panch-tatva"s (basic 5 elements, others including fire, earth, space, air). Alternatively, gods can be patrons of particular springs, rivers, or lakes: for example in Greek and Roman mythology, Peneus was a river god, one of the three thousand Oceanids. In Islam, not only does water give life, but every life is itself made of water: "We made from water every living thing".[32]
The Ancient Greek philosopher Empedocles held that water is one of the four classical elements along with fire, earth and air, and was regarded as the ylem, or basic substance of the universe. Water was considered cold and moist. In the theory of the four bodily humors, water was associated with phlegm. Water was also one of the five elements in traditional Chinese philosophy, along with earth, fire, wood, and metal.
Water also plays an important role in literature as a symbol of purification. Examples include the critical importance of a river in As I Lay Dying by William Faulkner and the drowning of Ophelia in Hamlet.

Air, zat yang penting bagi kehidupan.






Air dalam tiga wujudnya, cairan di laut, es yang mengambang, dan awan di udara yang merupakan uap air.
Air adalah zat kimia yang penting bagi semua bentuk kehidupan yang diketahui sampai saat ini di bumi,tetapi tidak di planet lain.[4] Air menutupi hampir 71% permukaan bumi. Terdapat 1,4 triliun kilometer kubik (330 juta mil³) tersedia di bumi.[5] Air sebagian besar terdapat di laut (air asin) dan pada lapisan-lapisan es (di kutub dan puncak-puncak gunung), akan tetapi juga dapat hadir sebagai awan, hujan, sungai, muka air tawar, danau, uap air, dan lautan es. Air dalam obyek-obyek tersebut bergerak mengikuti suatu siklus air, yaitu: melalui penguapan, hujan, dan aliran air di atas permukaan tanah (runoff, meliputi mata air, sungai, muara) menuju laut. Air bersih penting bagi kehidupan manusia. Di banyak tempat di dunia terjadi kekurangan persediaan air. Selain di bumi, sejumlah besar air juga diperkirakan terdapat pada kutub utara dan selatan planet Mars, serta pada bulan-bulan Europa dan Enceladus. Air dapat berwujud padatan (es), cairan (air) dan gas (uap air). Air merupakan satu-satunya zat yang secara alami terdapat di permukaan bumi dalam ketiga wujudnya tersebut.[6] Pengaturan air yang kurang baik dapat menyebakan kekurangan air, monopolisasi serta privatisasi dan bahkan menyulut konflik.[7]
Daftar is Sifat-sifat kimia dan fisika
1.1 Elektrolisis air
1.2 Kelarutan (solvasi)
1.3 Kohesi dan adesi
1.3.1 Tegangan permukaan
2 Air dalam kehidupan
2.1 Makhluk air
3 Air dan manusia
3.1 Air minum
3.2 Pelarut
4 Air dalam kesenian
4.1 Seni lukis
4.2 Fotografi
4.3 Seni tetesan air
5 Sains semu air
6 Rujukan
6.1 Artikel rujukan
6.2 Rujukan umum
6.3 Air sebagai sumber daya alam alami
6.4 Bacaan lebih lanjut
7 Lihat pula
//

[sunting] Sifat-sifat kimia dan fisika
Air

Informasi dan sifat-sifat
Nama sistematis
air
Nama alternatif
aqua, dihidrogen monoksida,hidrogen hidroksida
Rumus molekul
H2O
Massa molar
18.0153 g/mol
Densitas dan fase
0.998 g/cm³ (cariran pada 20 °C)0.92 g/cm³ (padatan)
Titik lebur
0 °C (273.15 K) (32 ºF)
Titik didih
100 °C (373.15 K) (212 ºF)
Kalor jenis
4184 J/(kg·K) (cairan pada 20 °C)
Halaman data tambahan
Disclaimer and references
Artikel utama: Air (molekul)
Air adalah substansi kimia dengan rumus kimia H2O: satu molekul air tersusun atas dua atom hidrogen yang terikat secara kovalen pada satu atom oksigen. Air bersifat tidak berwarna, tidak berasa dan tidak berbau pada kondisi standar, yaitu pada tekanan 100 kPa (1 bar) and temperatur 273,15 K (0 °C). Zat kimia ini merupakan suatu pelarut yang penting, yang memiliki kemampuan untuk melarutkan banyak zat kimia lainnya, seperti garam-garam, gula, asam, beberapa jenis gas dan banyak macam molekul organik.
Keadaan air yang berbentuk cair merupakan suatu keadaan yang tidak umum dalam kondisi normal, terlebih lagi dengan memperhatikan hubungan antara hidrida-hidrida lain yang mirip dalam kolom oksigen pada tabel periodik, yang mengisyaratkan bahwa air seharusnya berbentuk gas, sebagaimana hidrogen sulfida. Dengan memperhatikan tabel periodik, terlihat bahwa unsur-unsur yang mengelilingi oksigen adalah nitrogen, flor, dan fosfor, sulfur dan klor. Semua elemen-elemen ini apabila berikatan dengan hidrogen akan menghasilkan gas pada temperatur dan tekanan normal. Alasan mengapa hidrogen berikatan dengan oksigen membentuk fasa berkeadaan cair, adalah karena oksigen lebih bersifat elektronegatif ketimbang elemen-elemen lain tersebut (kecuali flor). Tarikan atom oksigen pada elektron-elektron ikatan jauh lebih kuat dari pada yang dilakukan oleh atom hidrogen, meninggalkan jumlah muatan positif pada kedua atom hidrogen, dan jumlah muatan negatif pada atom oksigen. Adanya muatan pada tiap-tiap atom tersebut membuat molekul air memiliki sejumlah momen dipol. Gaya tarik-menarik listrik antar molekul-molekul air akibat adanya dipol ini membuat masing-masing molekul saling berdekatan, membuatnya sulit untuk dipisahkan dan yang pada akhirnya menaikkan titik didih air. Gaya tarik-menarik ini disebut sebagai ikatan hidrogen.
Air sering disebut sebagai pelarut universal karena air melarutkan banyak zat kimia. Air berada dalam kesetimbangan dinamis antara fase cair dan padat di bawah tekanan dan temperatur standar. Dalam bentuk ion, air dapat dideskripsikan sebagai sebuah ion hidrogen (H+) yang berasosiasi (berikatan) dengan sebuah ion hidroksida (OH-).

Tingginya konsentrasi kapur terlarut membuat warna air dari Air Terjun Havasu terlihat berwarna turquoise.

[sunting] Elektrolisis air
Artikel utama: Elektrolisis air
Molekul air dapat diuraikan menjadi unsur-unsur asalnya dengan mengalirinya arus listrik. Proses ini disebut elektrolisis air. Pada katoda, dua molekul air bereaksi dengan menangkap dua elektron, tereduksi menjadi gas H2 dan ion hidrokida (OH-). Sementara itu pada anoda, dua molekul air lain terurai menjadi gas oksigen (O2), melepaskan 4 ion H+ serta mengalirkan elektron ke katoda. Ion H+ dan OH- mengalami netralisasi sehingga terbentuk kembali beberapa molekul air. Reaksi keseluruhan yang setara dari elektrolisis air dapat dituliskan sebagai berikut.

Gas hidrogen dan oksigen yang dihasilkan dari reaksi ini membentuk gelembung pada elektroda dan dapat dikumpulkan. Prinsip ini kemudian dimanfaatkan untuk menghasilkan hidrogen dan hidrogen peroksida (H2O2) yang dapat digunakan sebagai bahan bakar kendaraan hidrogen.[8][9][10]

[sunting] Kelarutan (solvasi)
Air adalah pelarut yang kuat, melarutkan banyak jenis zat kimia. Zat-zat yang bercampur dan larut dengan baik dalam air (misalnya garam-garam) disebut sebagai zat-zat "hidrofilik" (pencinta air), dan zat-zat yang tidak mudah tercampur dengan air (misalnya lemak dan minyak), disebut sebagai zat-zat "hidrofobik" (takut-air). Kelarutan suatu zat dalam air ditentukan oleh dapat tidaknya zat tersebut menandingi kekuatan gaya tarik-menarik listrik (gaya intermolekul dipol-dipol) antara molekul-molekul air. Jika suatu zat tidak mampu menandingi gaya tarik-menarik antar molekul air, molekul-molekul zat tersebut tidak larut dan akan mengendap dalam air.

Butir-butir embun menempel pada jaring laba-laba.

[sunting] Kohesi dan adesi
Air menempel pada sesamanya (kohesi) karena air bersifat polar. Air memiliki sejumlah muatan parsial negatif (σ-) dekat atom oksigen akibat pasangan elektron yang (hampir) tidak digunakan bersama, dan sejumlah muatan parsial positif (σ+) dekat atom oksigen. Dalam air hal ini terjadi karena atom oksigen bersifat lebih elektronegatif dibandingkan atom hidrogen—yang berarti, ia (atom oksigen) memiliki lebih "kekuatan tarik" pada elektron-elektron yang dimiliki bersama dalam molekul, menarik elektron-elektron lebih dekat ke arahnya (juga berarti menarik muatan negatif elektron-elektron tersebut) dan membuat daerah di sekitar atom oksigen bermuatan lebih negatif ketimbang daerah-daerah di sekitar kedua atom hidrogen.
Air memiliki pula sifat adesi yang tinggi disebabkan oleh sifat alami ke-polar-annya.

[sunting] Tegangan permukaan

Bunga daisy ini berada di bawah permukaan air, akan tetapi dapat mekar dengan tanpa terganggu. Tegangan permukaan mencegah air untuk menenggelamkan bunga tersebut.
Air memiliki tegangan permukaan yang besar yang disebabkan oleh kuatnya sifat kohesi antar molekul-molekul air. Hal ini dapat diamati saat sejumlah kecil air ditempatkan dalam sebuah permukaan yang tak dapat terbasahi atau terlarutkan (non-soluble); air tersebut akan berkumpul sebagai sebuah tetesan. Di atas sebuah permukaan gelas yang amat bersih atau bepermukaan amat halus air dapat membentuk suatu lapisan tipis (thin film) karena gaya tarik molekular antara gelas dan molekul air (gaya adhesi) lebih kuat ketimbang gaya kohesi antar molekul air.
Dalam sel-sel biologi dan organel-organel, air bersentuhan dengan membran dan permukaan protein yang bersifat hidrofilik; yaitu, permukaan-permukaan yang memiliki ketertarikan kuat terhadap air. Irvin Langmuir mengamati suatu gaya tolak yang kuat antar permukaan-permukaan hidrofilik. Untuk melakukan dehidrasi suatu permukaan hidrofilik — dalam arti melepaskan lapisan yang terikat dengan kuat dari hidrasi air — perlu dilakukan kerja sungguh-sungguh melawan gaya-gaya ini, yang disebut gaya-gaya hidrasi. Gaya-gaya tersebut amat besar nilainya akan tetapi meluruh dengan cepat dalam rentang nanometer atau lebih kecil. Pentingnya gaya-gaya ini dalam biologi telah dipelajari secara ekstensif oleh V. Adrian Parsegian dari National Institute of Health.[11] Gaya-gaya ini penting terutama saat sel-sel terdehidrasi saat bersentuhan langsung dengan ruang luar yang kering atau pendinginan di luar sel (extracellular freezing).

[sunting] Air dalam kehidupan

Kehidupan di dalam laut.
Dari sudut pandang biologi, air memiliki sifat-sifat yang penting untuk adanya kehidupan. Air dapat memunculkan reaksi yang dapat membuat senyawa organic untuk melakukan replikasi. Semua makhluk hidup yang diketahui memiliki ketergantungan terhadap air. Air merupakan zat pelarut yang penting untuk makhluk hidup dan adalah bagian penting dalam proses metabolisme. Air juga dibutuhkan dalam fotosintesis dan respirasi. Fotosintesis menggunakan cahaya matahari untuk memisahkan atom hidroden dengan oksigen. Hidrogen akan digunakan untuk membentuk glukosa dan oksigen akan dilepas ke udara.

[sunting] Makhluk air
Artikel utama: Hidrobiologi
Perairan bumi dipenuhi dengan kehidupan. Makhluk-makhluk pertama berasal dari perairan. Hampir semua ikan hidup di dalam air, selain itu, mamalia seperi lumba-lumba dan ikan paus juga hidup di dalam air. Hewan-hewan seperti amfibi menghabiskan sebagian hidupnya di dalam air. Tumbuhan seperti alga dan rumput laut menjadi sumber makanan ekosistem perairan. Di samudra, plankton menjadi sumber makanan utama.

[sunting] Air dan manusia
Peradaban manusia berjaya mengikuti sumber air. Mesopotamia yang disebut sebagai awal peradaban berada di antara sungai Tigris dan Euphrates. Peradaban Mesir Kuno bergantung pada sungai Nil. Pusat-pusat manusia yang besar seperti Rotterdam, London, Montreal, Paris, New York City, Shanghai, Tokyo, Chicago, dan Hong Kong mendapatkan kejayaannya sebagian dikarenakan adanya kemudahan akses melalui perairan.

[sunting] Air minum

Air yang diminum dari botol.
Artikel utama: Air minum
Tubuh manusia terdiri dari 55% sampai 78% air, tergantung dari ukuran badan.[12] Agar dapat berfungsi dengan baik, tubuh manusia membutuhkan antara satu sampai tujuh liter air setiap hari untuk menghindari dehidrasi; jumlah pastinya bergantung pada tingkat aktivitas, suhu, kelembaban, dan beberapa faktor lainnya. Selain dari air minum, manusia mendapatkan cairan dari makanan dan minuman lain selain air. Sebagian besar orang percaya bahwa manusia membutuhkan 8–10 gelas (sekitar dua liter) per hari,[13] namun hasil penelitian yang diterbitkan Universitas Pennsylvania pada tahun 2008 menunjukkan bahwa konsumsi sejumlah 8 gelas tersebut tidak terbukti banyak membantu dalam menyehatkan tubuh. [14] Literatur medis lainnya menyarankan konsumsi satu liter air per hari, dengan tambahan bila berolahraga atau pada cuaca yang panas.[15]

[sunting] Pelarut
Pelarut digunakan sehari-hari untuk mencuci, contohnya mencuci tubuh manusia, pakaian, lantai, mobil, makanan, dan hewan. Selain itu, limbah rumah tangga juga dibawa oleh air melalui saluran pembuangan. Pada negara-negara industri, sebagian besar air terpakai sebagai pelarut.
Air dapat memfasilitasi proses biologi yang melarutkan limbah. Mikroorganisme yang ada di dalam air dapat membantu memecah limbah menjadi zat-zat dengan tingkat polusi yang lebih rendah.

[sunting] Air dalam kesenian

"Ombak Besar Lepas Pantai Kanagawa." oleh Katsushika Hokusai, lukisan yang sering digunakan sebagai pelukisan sebuah tsunami.
Artikel utama: Air dalam kesenian
Dalam seni air dipelajari dengan cara yang berbeda, ia disajikan sebagai suatu elemen langsung, tidak langsung ataupun hanya sebagai simbol. Dengan didukung kemajuan teknologi fungsi dan pemanfaatan air dalam seni mulai berubah, dari tadinya pelengkap ia mulai merambat menjadi obyek utama. Contoh seni yang terakhir ini, misalnya seni aliran atau tetesan (sculpture liquid atau droplet art).[16]

[sunting] Seni lukis
Pada jaman Renaisans dan sesudahnya air direpresentasikan lebih realistis. Banyak artis menggambarkan air dalam bentuk pergerakan - sebuah aliran air atau sungai, sebuah lautan yang turbulensi, atau bahkan air terjun - akan tetapi banyak juga dari mereka yang senang dengan obyek-obyek air yang tenang, diam - danau, sungai yang hampir tak mengalir, dan permukaan laut yang tak berombak. Dalam setiap kasus ini, air menentukan suasana (mood) keseluruhan dari karya seni tersebut,[17] seperti misalnya dalam Birth of Venus (1486) karya Botticelli[18] dan The Water Lilies (1897) karya Monet.[19]

Rivermasterz, memanfaatkan air sebagai elemen dalam foto.

[sunting] Fotografi
Sejalan dengan kemajuan teknologi dalam seni, air mulai mengambil tempat dalam bidang seni lain, misalnya dalam fotografi. walaupun ada air tidak memiliki arti khusus di sini dan hanya berperan sebagai elemen pelengkap, akan tetapi ia dapat digunakan dalam hampir semua cabang fotografi: mulai dari fasion sampai landsekap. Memotret air sebagai elemen dalam obyek membutuhkan penanganan khusus, mulai dari filter circular polarizer yang berguna menghilangkan refleksi, sampai pemanfaatan teknik long exposure, suatu teknik fotografi yang mengandalkan bukaan rana lambat untuk menciptakan efek lembut (soft) pada permukaan air.[20]

[sunting] Seni tetesan air
Artikel utama untuk bagian ini adalah: Seni tetesan air
Keindahan tetesan air yang memecah permukaan air yang berada di bawahnya diabadikan dengan berbagai sentuhan teknik dan rasa menjadikannya suatu karya seni yang indah, seperti yang disajikan oleh Martin Waugh dalam karyanya Liquid Sculpture, suatu antologi yang telah mendunia.[21]
Seni tetesan air tidak berhenti sampai di sini, dengan pemanfaatan teknik pengaturan terhadap jatuhnya tetesan air yang malar, mereka dapat diubah sedemikian rupa sehingga tetesan-tetesan tersebut sebagai satu kesatuan berfungsi sebagai suatu penampil (viewer) seperti halnya tampilan komputer. Dengan mengatur-atur ukuran dan jumlah tetesan yang akan dilewatkan, dapat sebuah gambar ditampilkan oleh tetesan-tetesan air yang jatuh. Sayangnya gambar ini hanya bersifat sementara, sampai titik yang dimaksud jatuh mencapai bagian bawah penampil.[22] Komersialisasi karya jenis ini pun dalam bentuk resolusi yang lebih kasar telah banyak dilakukan.[23][24]

[sunting] Sains semu air

Ikatan hidrogen antar molekul air yang membuatnya dapat membentuk kelompok atau klaster,
Profesor Masaru Emoto, seorang peneliti dari Hado Institute di Tokyo, Jepang pada tahun 2003 melalui penelitiannya mengungkapkan suatu keanehan pada sifat air. Melalui pengamatannya terhadap lebih dari dua ribu contoh foto kristal air yang dikumpulkannya dari berbagai penjuru dunia, Emoto menemukan bahwa partikel molekul air ternyata bisa berubah-ubah tergantung perasaan manusia disekelilingnya,[25] yang secara tidak langsung mengisyaratkan pengaruh perasaan terhadap klasterisasi molekul air yang terbentuk oleh adanya ikatan hidrogen,
Emoto juga menemukan bahwa partikel kristal air terlihat menjadi "indah" dan "mengagumkan" apabila mendapat reaksi positif disekitarnya, misalnya dengan kegembiraan dan kebahagiaan. Namun partikel kristal air terlihat menjadi "buruk" dan "tidak sedap dipandang mata" apabila mendapat efek negatif disekitarnya, seperti kesedihan dan bencana. Lebih dari dua ribu buah foto kristal air terdapat didalam buku Message from Water (Pesan dari Air) yang dikarangnya sebagai pembuktian kesimpulan nya sehingga hal ini berpeluang menjadi suatu terobosan dalam meyakini keajaiban alam. Emoto menyimpulkan bahwa partikel air dapat dipengaruhi oleh suara musik, doa-doa dan kata-kata yang ditulis dan dicelupkan ke dalam air tersebut.[26]
Sampai sekarang Emoto dan karyanya masih dianggap kontroversial.[27][28][29][30] Ernst Braun dari Burgistein di Thun, Swiss, telah mencoba dalam laboratoriumnya metoda pembuatan foto kristal seperti yang diungkapan oleh Emoto, sayangnya hasil tersebut tidak dapat direproduksi kembali, walaupun dalam kondisi percobaan yang sama.[31]

The Hidden Message in Water


You Make Me Sick
I kill you


Love and Gratitude





Water…The Earth is largely made up of it. As are we…And yet about it we know significantly little.Until the groundbreaking work of a pioneer Japanese researcher whose astonishing discovery about water, documented photographically, changed most of what we didn't know…and led to a new consciousness of Earth's most precious resource.Dr. Masaru Emoto was born in Japan and is a graduate of the Yokohama Municipal University and the Open International University as a Doctor of Alternative Medicine.




His photographs were first featured in his self-published books Messages from Water 1 and 2. The Hidden Messages in Water was first published in Japan, with over 400,000 copies sold internationally.





You Make Me Sick What has put Dr. Emoto at the forefront of the study of water is his proof that thoughts and feelings affect physical reality. By producing different focused intentions through written and spoken words and music and literally presenting it to the same water samples, the water appears to "change its expression".





Love and Gratitude Essentially, Dr. Emoto captured water's 'expressions.' He developed a technique using a very powerful microscope in a very cold room along with high-speed photography, to photograph newly formed crystals of frozen water samples. Not all water samples crystallize however. Water samples from extremely polluted rivers directly seem to express the 'state' the water is in.





Dr. Masaru Emoto Dr. Masaru Emoto discovered that crystals formed in frozen water reveal changes when specific, concentrated thoughts are directed toward them. He found that water from clear springs and water that has been exposed to loving words shows brilliant, complex, and colorful snowflake patterns. In contrast, polluted water, or water exposed to negative thoughts, forms incomplete, asymmetrical patterns with dull colors.The implications of this research create a new awareness of how we can positively impact the earth and our personal health. The success of his books outside Japan has been remarkable. Dr. Emoto has been called to lecture around the world as a result and has conducted live experiments both in Japan and Europe as well as in the US to show how indeed our thoughts, attitudes, and emotions as humans deeply impact the environment.
Heavy Metal Music Dr. Emotos newest book, The Hidden Messages in Water, further explores his revolutionary research. Since humans and the earth are composed mostly of water, his message is one of personal health, global environmental renewal, and a practical plan for peace that starts with each one of us. The implications of this research create a new awareness of how we can positively impact the earth and our personal health. Available from your favorite bookseller or from Beyond Words Publishing www.beyondword.com or telephone 503-531-8700 (ISBN: 1-58270-114-8, $16.95, 192 pages (64 color) soft cover.)
Book Cover Dr. Emoto’s web site"Half of the earth is water; our body is three-quarters water. Water represents the interface between the 4th dimension in which we live and the 5th dimensional sphere of our soul. Many studies have shown subtle effects of healers upon hydrogen bonding and infrared absorption of water. None of these scientific studies can compare with the beauty and clear messages shown by Dr. Emoto's elegant work. The impact of thought and beauty has never before been demonstrated so well."
C. Norman Shealy, M.D., Ph.D. Founding President, American Holistic Medical AssociationPresident. Holos University Graduate SeminaryAuthor of 295 publications, including Sacred Healing"The Hidden Messages in Water is magnificent. Through his genius photography and superb scientific skill, Dr. Masaru Emoto has created a book that is truly a mystical treasure. His contribution to research in spiritual consciousness is positively masterful."
- Caroline M. Myss, author of Sacred Contracts and Anatomy of the Spirit"As with Galileo, Newton, and Einstein, Dr. Emoto¹s clear vision helps us see ourselves and our universe differently. Science and spirit unite, resulting in a profound and undeniable quantum leap in how we view our world, and how we can reclaim our health and create peace."
- Marcus Laux, ND, Editor, Naturally Well Today

Saturday, November 8, 2008

DNA,God's book of our members

DNA,God's book of our members
Psalm 139:13-16
Psalm 139 details God's blueprint for our design. On April 2, 1953, James Watson and Francis Crick presented the structure for DNA. DNA contains all the genetic information to create our entire bodies. DNA encodes our red blood cells, and the heart that pumps them. DNA encodes our hair follicles, and the color of the hair in them. DNA encodes our bones, and the muscles attached to them. God knew the structure of DNA long before 1953 because God created DNA, and has used it as His "book" of our members
.
Psalm 139:13-19 [KJV]
13 "For thou hast possessed my reins: thou has covered me in my mother's womb.
14 I will praise thee; for I am fearfully and wonderfully made: marvelous are thy works; and that my soul knoweth right well.
15 My substance was not hid from thee, when I was made in secret, and curiously wrought in the lowest parts of the earth.
16 Thine eyes did see my substance, yet being unperfect; and in thy book all my members were written, which in continuance were fashioned, when as yet there was none of them.
Unique, distinguished creations!
In verse 14 we read that we are "fearfully made". The Hebrew word is "Ya're" is from the root 'to revere' or 'to fear'. The word "wonderfully" in Hebrew is 'Pah'lah' which has as its root 'to distinguish, separate, or set apart'. From this we read, "With fearful things I am distinguished" God is saying that we are each unique, distinguished, wonderful creations! And He created us with fearful, reverent, awesome things. Certainly the construction of our bodies is with amazingly awesome building blocks.


I remember Anatomy class in Medical School. Everyone dreaded with fear and nervousness the first day of Anatomy. Most of us anticipated it the entire summer leading up to that our first year in Medical School. The day we unveiled the cadavers we would be dissecting in lab was a memorable day. Although everyone of us had seen a dead person at a funeral, none of us had seen the insides of a dead person. As the weeks passed into months, we dissected muscles, nerves, blood vessels, organs, bone, and fascia. We identified every one of these hundreds of structures and were tested on them. From a purely non-microscopic viewpoint I can tell you that we are made with awesome things!!!! The intricacy of our bodies is beyond comprehension. When we think of our bodies from a microscopic standpoint, it becomes even more mind-boggling to consider the complexity of the "fearful things." With these "fearful things" we are made into unique, distinguished creatures. Though we all possess the same anatomy [with rare exceptions], we are all unique.

Not hidden from God:
In verse 15 we read that our substance was not hid from God. This word "substance" is 'otsem' which can also refer to our bones or our body. Certainly nothing that happens in the womb is hidden from God. All the details of how we are made are not known to mankind. Even if we can map out the events with precision, we shall never know the full details of the "how". Thus, our formation will remain "in secret" to a degree. We were "curiously wrought or woven" by God. The next phrase "depths of the earth" is an interesting phrase. The word for "depth" is 'tach'tiy' which refers to lower parts, pit, or womb. Here we see that the womb of the woman is figuratively the womb of the earth. For we all come from dust [Genesis 3:19], so our mother's womb is where "dust or earth" becomes an image bearer of God!

God's book of DNA
In verse 16 we read that God saw our substance [literally our unformed bodies--or 'embryo' in today's language], in the womb.
An interesting difference is seen here between the NIV translation and the King James Bible. The NIV says that "All the days ordained for me were written in your book before one of them came to be." So the question is this: "Does God's book contain our days and the things we will do, or does God's book contain the information that details the formation of our bodies?"
This is an important question because it determines the nature of God's book. Without knowing what is in God's book, we cannot know what His book is at all.
The hinge to this passage is "kowl"; which means "all of them" or every one"
The passage reads like this: "Your eyes saw my embryo/substance and on your book all of them ["kowl"] were written. In the continuance of days ['yowm'] were they formed."
If "kowl" is referring to the days rather than our substance, then it would be appropriate to translate this passage with a reference to the book containing our days. But the antecedent [prior context] is our bodies, NOT our days. Verses 13, 14, 15, and 16 all have as their subject matter the formation of our bodies in the womb. Therefore the psalmist, when saying "kowl--all of them" is most certainly referring to the subject of the last 4 verses...our bodies.

God's record of our bodies is found in the spectacular DNA structure. He has recorded everything about us in the pages of these molecules.
The number of hairs on our head.
Our height.
Our skin and hair color.
Our physical, mental, and intellectual strengths.
Long before mankind discovered DNA, God was creating and using it to record us in His wonderful book of our members.

Gen Tuhan - Iman Sudah Tertanam Dalam Gen KitaPengarang : Dean HamerPenerbit : Gramedia Pustaka Utama

Deskripsi :
Kecenderungan setiap manusia bersikap religius (bukan beragama) bukanlah suatu kebetulan, melainkan secara meyakinkan disebabkan oleh gen dalam diri manusia—demikian pendirian Dr. Dean Hamer. Banyak temuan baru di bidang genetika perilaku serta neurobiologi menunjukkan bahwa setiap manusia mewarisi dalam dirinya kecenderungan yang membuat otak manusia "haus" sekaligus siap menerima "kekuatan yang lebih tinggi".

Dengan menganalisis pengaruh genetis yang membentuk diri manusia—subyek penelitiannya 1000 orang, berlatar belakang kehidupan serta usia yang beragam—kemudian membandingkan semua sampel DNA subyek penelitiannya dengan skala pengukur kadar spiritualitas, Dr. Hamer berhasil mengidentifikasi sebuah gen tertentu, yakni "Gen Tuhan", yang tampaknya membangun spiritualitas. Dengan pilihan kata dan bahasa sederhana, dengan penulis yang punya otoritas besar di bidangnya, buku ini menyajikan banyak temuan baru hasil riset bidang genetika, biologi molekuler, dan psikologi yang berkaitan dengan kecenderungan dasariah perilaku manusia.
The Divine Code of Life
Author: Kazuo Murakami,Professor Emeritus at Tsukuba University, one of the leading universities in Japan. He was researcher at University Oregon, Assistant Professor at Vanderbilt University and Professor at Tsukuba University. He is one of the core members of international bio-chemistry research associations.
Table of Contents: Prologue How to read the wonders of life
* DNA works differently depending upon your attitude to life
* No cloned human beings will be the same

Chapter 1 When the DNA awakens
* On and Off of a DNA
* The codes written in DNA's
* Positive thinking awakens DNA's

Chapter2 DNA's change according to stimulations
* My career and my DNA
* Features of DNA -ON Type of people
* Unexpected encounter lead me to a success
Chapter A life with DNA on
* Nobel prize class findings come from night science
* Doctor 35000- cows finally succeeds
* Nature accredits the experience results
* World's first attempt to collect Renin excessively
* Decoding the Renin enzyme leads to complete cure
Chapter4 Wonders in DNA as the design of a life
* A human life itself is a miracle
* You should try to keep your DNA's on all the time
* Best design of a new pharmaceutical can be done on CG
* Even bad germs can help science
Chapter 5 Who wrote the codes of life?
* When I sense the existence of " Something Great"
* Obstacles that block you from doing things more freely
* Being moved deeply will bring you longevity
* Balance in the Mother Nature should not be lost
Summary:
It is widely known that DNA contains all the information for each of all the living creatures. DNA's of all animals, plants and human beings control basic behaviors of their own. This is what most people today know and believe. As a result, people tend to believe that most results of their lives are already determined at the point of birth. If you have good DNA's for athletic activities, you would succeed in sports anyway. If not, you will not make an excellent athlete. Thus people are inclined to a new kind of fatalism backed by scientific facts which you cannot argue at all.
Murakami, however, found that actual results of what people do can vary greatly depending upon their attitudes. If a cancer patient maintains a strong will to overcome the disease, the likelihood is he or she will survive much longer than the others who takes it as fate and see the situation entirely negative. According to this internationally acclaimed bio chemical scientist, many medical doctors found incredible recoveries from fatal cancers because of strong and positive will the patient maintained.
For the first time, Murakami shows clear evidences of DNA functions that give strong influences to our daily lives once it is activated by the human being. If you are in a positive mood certain DNA's start to work actively sometimes against expectations of medical professionals . If you are in a negative feeling, potentially powerful DNA functions will continue to be inactive.
Thus by maintaining positive ways to see what you see in your life, you can improve and enjoy your life greatly. The book reveals all the secrets how to remain positive throughout your life.
High lights: Kazuo Murakami is one of the bio scientists who are within the community of future Nobel laureates. His scientific achievements have been recognized internationally for a long time. The most well known achievement is the extraction of renin which is the key enzyme for high blood pressure. He succeeded to get pure renin from cow the pituitary gland.
He collected 0.5 milligrams of renin from 35000 cow pituitary gland. Pasture Institute in France was close to the success but he completed the long awaited result before anyone else in the world.
The study of high blood pressure was enhanced with his success empowering the worldwide pharmaceutical studies for the medical problem to go forward more promptly.
Thorough his academic studies he started to sense the power ofnature that controls all the living creatures exist in a great harmony with other living creatures. He found many examples of incredible effects of positive thinking.
The most amazing finding was that human way to look at his/her life has great influence on how DNA's actually work in different situation. He thinks if you look at your troubles in a positive manner certain dormant DNA's start working to tackle your problems, psychological or physical.
He quotes Bernard Shaw that once he replied to a beautiful lady, "
You say if you and I get married we will have most beautiful and brilliant child on earth. But what if we had a child with your brain and may look!" It is so true that you can not have a full control on how your DNA's work at the point of birth.
However, Murakami argues. you can make certain DNA's awake a good portion of them by having a positive state of mind. Human beings have 3 billion DNA's each and yet it is scientifically true that we utilize only a small part of it. What a waste!
Adolph Hitler was one of the worst human beings ever existed on earth. However, even if someone succeeded to make a clone of him, it will not be like Adolph Hitler because the mind of the cloned being will grow with different environment, culture and state of mind!
The point is you can make a new "YOU" by having different attitude and way of thinking.DNA's are not something static. They work every moment without stopping for a second. It is you who can change your life letting your DNA's work better by keeping positive, constructive state of mind.

Buku:The Secret,Gen Tuhan,Divine Code of Life:Awaken Your Genes and Discover Hidden Talents

The Secret, sebuah konsep New Age Movement yang perlu di waspadai
Law of Attraction:
Laws of attraction (affinity); Laws of Attraction (movie); Laws of science (physics)The Law of Attraction is commonly associated with New Thought and New Age theories, beliefs, and practices. It states that people experience physical and mental manifestations that correspond to their predominant thoughts, feelings, words, and actions and that people therefore have direct control over reality and their lives through thought alone. A person's thoughts (conscious and unconscious), emotions, beliefs and actions are said to attract corresponding positive and negative experiences, or "harmonious vibrations of the law of attraction". [1] The "law of attraction" states "you get what you think about; your thoughts determine your experience.

silahkan di lihat lebih lanjut di wikipedia, coba di pelajari lebih dalam.
The Secret: Mukjizat Berpikir Positif,Rhonda Byrne.
Judul Buku : The SecretPenulis : Rhonda ByrneAlih Bahasa : Susi PurwokoPenerbit : Gramedia
Pustaka Utama, Jakarta.
Buku The Secret karya Rhonda Byrne menjadi perbincangan, khususnya peminat buku-buku pengembangan pribadi atau motivasi. Bahkan motivator sekelas Tung de sem Waringin membahasnya dalam seminar di Jakarta pekan lalu. Tidak hanya itu, lembaga pengembangan pribadi seperti Kata Hati pimpinan Erbe Sentanu, juga mengupasnya secara khusus di kelas terbatas di Jakarta maupun Surabaya. Di Amerika, buku yang di-launching pada 2006 setelah film The Secret ditayangkan, langsung dibedah dalam acara Oprah Show asuhan Oprah Winfrey. Tak heran di Amerika buku ini jadi best seller versi New York Times.Apa sebenarnya yang menarik dari buku setebal 232 halaman ini? Tak lain kelihaian Rhonda mengaitkan rahasia orang-orang sukses di masa lalu dengan hukum tarik-menarik (the law of attraction). Selain itu, Rhonda juga mampu mengemas pikiran 24 pembicara kelas dunia untuk mengupas hukum tarik-menarik itu secara singkat dan padat. Para pembicara tersebut memiliki latar belakang berbagai disiplin ilmu. Dari psikolog, metafisika, pakar fungshui, pengusaha, filsuf, visionary, pakar fisika kuantum, sampai dokter spesialis syaraf. Mereka secara bergantian mengupas rahasia sukses orang-orang kaya di masa lalu dan sekarang.Rahasia sukses itu tertuang dalam 10 pokok bahasan. Yakni, pengungkapan rahasia, penyederhanaan rahasia, cara menggunakan rahasia, proses penuh daya, rahasia uang, rahasia relasi, rahasia kesehatan, rahasia dunia, rahasia Anda, dan rahasia kehidupan. Pada setiap pokok bahasan, Rhonda dan 24 pakar secara bergantian mengupas hukum tarik-menarik sisi kehidupan orang-orang sukses. Bahasan pertama, pengungkapan rahasia. Menurut Rhonda, semua orang sukses di masa lalu mengetahui rahasia sukses. Mereka memahami hukum tarik-menarik.Menurut Bob Proctor, filsuf, pengarang, dan pembimbing pribadi, kita bekerja dengan satu daya yang tak terhingga. Semua membimbing sendiri dengan hukum-hukum yang persis sama. "Segala sesuatu yang datang ke dalam hidup Anda ditarik oleh Anda ke dalam hidup Anda. Dan segala sesuatu itu tertarik ke Anda oleh citra-citra yang Anda pelihara dalam benak. Oleh apa yang Anda pikirkan (hlm. 4). Lalu Rhonda menegaskan, tidak menjadi soal siapa Anda atau di mana Anda berada, hukum tarik-menarik membentuk seluruh pengalaman hidup, dan hukum yang saat berdaya ini melakukannya melalui pikiran-pikiran Anda (hlm 5).Dari segi substansi, buku ini sebenarnya tidak jauh berbeda dengan buku-buku pengembangan pribadi atau motivasi karya penulis lain. Bahkan apa yang disebut rahasia para tokoh sukses seperti yang dikatakan Rhonda secara mendalam telah dikupas Napoleon Hill dalam buku Think and Grow Rich yang terbit 1937. Buku-buku Hill telah menjadi inspirator para penulis buku motivasi saat ini.Rhonda mengakui bahwa rahasia sukses yang dituangkan dalam The Secret terinspirasi dari buku pemberian putrinya yang berjudul The Science of Getting Rich karangan Wallace D. Wattles terbitan 1910. Sedangkan apa yang ditulis Napoleon Hill merupakan hasil wawancara langsung dengan 500 tokoh milyuner pada zamannya. Bisa dipahami, karena Napoleon seorang jurnalis. Tokoh-tokoh yang diwawancarai antara lain, Thomas Alfa Edison, penemu bohlam lampu, penemu telepon Alexander Graham Bell, Henry Ford, Presiden Theodore Roosevelt, raja minyak John D. Rockefeller, dan Charles M. Schwab.Tentang rahasia yang diungkapkan buku The Secret, Napoleon telah menyinggungnya dalam kata pengantar buku Think and Grow Rich. Formula rahasia itu, katanya, memuaskan keinginan orang-orang yang siap mendapatkannya (hlm. 5, Think and Grow Rich).Demikian pula dalam soal hukum tarik-menarik, yang merupakan ikon menonjol The Secret, Napoleon mengatakan: Otak kita dikelilingi oleh semacam magnet yang berasal dari pikiran-pikiran yang mendominasi benak kita. Dengan mekanisme yang rumit,"magnet- magnet" itu juga akan menarik semua kekuatan, orang, dan situasi yang selaras dengan pikiran dominasi kita (hlm. 37 Think and Grow Rich).Tentang berpikir positif karya Bryne ini memang sudah banyak dibahas para penulis pengembangan pribadi. Tampaknya Rhonda hanya mengganti kemasannya. Apalagi ditunjang film The Secret, menjadikan buku ini seolah-olah merupakan tema baru. Hanya saja, ketika mengupas cara menggunakan rahasia (The Secret), buku ini terasa mengesampingkan keberadaan Tuhan. Coba kita simak kalimat ini: meminta apa yang Anda inginkan kepada Semesta' (hlm. 78).Bagi Rhonda, semesta adalah segalanya. Coba simak ungkapan selanjutnya: Jadi, ketika Anda merasa buruk, ini adalah komunikasi dari semesta yang berkata, "Peringatan! Ubah pikiran sekarang juga. Tercatat frekuensi negatif. Ubah frekuensi. Mulai menghitung mundur untuk perwujudan. Peringatan!"Lalu, "Lain kali, ketika Anda merasa buruk atau merasakan emosi negatif, dengarkan sinyal yang Anda terima dari semesta. Pada saat itu juga Anda akan menghalangi kebaikan mendekati Anda karena Anda sedang berada di suatu frekuensi negatif. Ubahlah pikiran Anda dan pikirkan sesuatu yang baik. Ketika perasaan-perasaan yang baik mulai datang, Anda akan mengetahuinya karena Anda sudah memindahkan diri ke suatu frekuensi yang baru, dan Semesta telah mengukuhkannya dengan perasaan yang lebih baik(hlm. 37).Buku ini lebih mengedepankan kekuatan akal dan kekuatan alam. Perilaku dan keinginan manusia seolah-olah hanya bergantung pada kekuatan alam. Misalnya, pada bab "Cara Menggunakan Rahasia", menyinggung proses penciptaan keinginan seseorang, Lisa Nichols, penasihat dan motivator pemberdayaan pribadi mengatakan, dalam meminta, berilah tugas kepada semesta. Biarkan semesta mengetahui apa yang Anda inginkan. Semesta selalu merespons pikiran-pikiran Anda (hlm. 51). Sedangkan Dr Joe Vitale menegaskan, semesta akan menyusun ulang dirinya dan mewujudkannya bagi Anda (hlm. 56).Konsep cara berpikir positif dalam buku ini memang cukup lengkap. Hanya saja, ada yang aneh dan janggal. Dalam buku Rhonda Byrne ini, Tuhan diabaikan. Di mana posisi Tuhan? Apakah Rhonda Byrne telah menggantikan zat Tuhan yang Mahaagung dengan semesta?

BUKU lainnya:
Gen Tuhan - Iman Sudah Tertanam Dalam Gen KitaPengarang : Dean Hamer
Penerbit : Gramedia Pustaka Utama
Deskripsi :Kecenderungan setiap manusia bersikap religius (bukan beragama) bukanlah suatu kebetulan, melainkan secara meyakinkan disebabkan oleh gen dalam diri manusia—demikian pendirian Dr. Dean Hamer. Banyak temuan baru di bidang genetika perilaku serta neurobiologi menunjukkan bahwa setiap manusia mewarisi dalam dirinya kecenderungan yang membuat otak manusia “haus” sekaligus siap menerima "kekuatan yang lebih tinggi".

Dengan menganalisis pengaruh genetis yang membentuk diri manusia—subyek penelitiannya 1000 orang, berlatar belakang kehidupan serta usia yang beragam—kemudian membandingkan semua sampel DNA subyek penelitiannya dengan skala pengukur kadar spiritualitas, Dr. Hamer berhasil mengidentifikasi sebuah gen tertentu, yakni "Gen Tuhan", yang tampaknya membangun spiritualitas. Dengan pilihan kata dan bahasa sederhana, dengan penulis yang punya otoritas besar di bidangnya, buku ini menyajikan banyak temuan baru hasil riset bidang genetika, biologi molekuler, dan psikologi yang berkaitan dengan kecenderungan dasariah perilaku manusia.

Divine Code of Life:Awaken Your Genes and Discover Hidden Talents
Author :Kazuo Murakami, Ph. D.
For many years, genes have been thought of in fatalistic terms, as in "you can't do anything about it because it’s in your genes." Recent studies on genetic engineering have uncovered an amazing discovery: the function of genes changes according to surrounding environments and stimulation. To be more precise, dormant genes have the potential to wake up. In The Divine Code of Life, author and leading biochemist, Kazuo Murakami, Ph. D., has discovered that the function of your genes is affected by your thoughts and emotions. Humans have abilities to bring forth their talents at any age, and if we observe nature from a positive perspective, our unfathomable abilities will come forth. So how can you activate the good genes and switch off the bad genes? Only about 5-10 percent of our genes are working at one time. Murakami believes in “genetic thinking,” or living each day to the fullest with a positive outlook. In doing so, you experience happiness, joy, inspiration, and thankfulness, all of which activate beneficial genes. Did you know that twenty-three valuable genes are activated by laughter alone? Living with a positive attitude will allow your hidden abilities to come forth and enable you to live the best life possible.
Tuhan Dalam Gen Kita
Dulu, sebelum naik kelas, kita selalu menghadapi ujian. Karena guru tak pernah benar-benar tahu apakah kita layak naik tingkat. Tuhan bukan guru itu, kenapa Dia masih menguji kita?
Bukankah Dia sungguh Maha Tahu?
Dalam buku Tuhan di Dalam Gen Kita, judul aslinya The Divine Message of the DNA, Kazuo Murakami, mengatakan semua makhluk hidup menggunakan kode genetik yang sama. Artinya prinsip kerja gen manusia sama dengan lumut. Gen manusia yang berjumlah miliaran itu ternyata tidak tetap dan dilengkapi dengan sistem on-off (nyala/padam).
Misalnya pada umur tertentu gen penumbuh bulu menyala. Lalu, munculah bulu hanya di tempat tertentu yang di waktu bayi tak ada. Selain itu mekanisme on off ini dapat dipicu oleh sikap mental.


Menurut Murakami, gen yang ada dalam tubuh kita itu rata-rata yang "menyala" hanya 15-30 persen. Selebihnya gen tersebut dalam keadaan tidur alias dorman. Sehingga, kemampuan kita sekarang ini belum optimal.
Andai kita mampu menyalakan gen-gen tersebut, niscaya kita akan mempunyai kemampuan yang tak terbatas. Jelasnya salah satu cara membangunkan gen-gen yang sedang tidur itu dengan energi yang positif.
Untuk mencipta energi positif, bisa dimulai dengan berpikir positif. Berkelakuan selaras dengan alam yang hanya selalu memberi dan memberi. Seperti pada setiap ajaran yang tertuang pada kitab-kitab suci. Seperti lagu masa bocah yang tak pernah basi itu: hanya memberi tak harap kembali, bagai sang surya menyinari dunia.
Pada buku itu, pendiri Institute for the Study of the Mind-gene Relationship ini juga menceritakan eksperimen Nozawa yang beride untuk memproduksi tomat raksasa. Nozawa meneliti, hambatan apa yang membatasi tumbuhan tersebut hanya memproduksi buah sedikit. Dari penelitiannya, ternyata tanah adalah hambatan utamanya. Tumbuhan yang akan memanjangkan akarnya terhambat. Tanah menghalangi persediaan enzim. Tanah langsung menghadapkan tumbuhan pada perubahan suhu. Jika hambatan ini dihilangkan dan menyediakan lingkungan yang sesuai, potensinya akan tak terbatas.

Dia mencoba bertanam dengan sistem hidroponik. Terbukti, pada pameran sains dan tekonologi Tsukuba pada 1985, tomat Nozawa bisa memproduksi buah seribu kali lipat dibanding dengan cara bertanam konvesional.

Manusia pun sama halnya. Jika kita bisa menghilangkan faktor penghambat, tak mustahil mempunyai kemampuan yang optimal. Dan ujian (yang sebagian orang menderita karenanya) yakinlah, itu salah satu cara Tuhan untuk menyalakan gen kita.
Bagi teman2 bisa kasih tanggapan