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Gold ( /ˈɡoʊld/) is a chemical element with the symbol Au (from Latin: aurum "gold") and an atomic number of 79. Gold is a dense, soft, shiny metal and the most malleable and ductile metal known.[citation needed] Pure gold has a bright yellow color and luster traditionally considered attractive, which it maintains without oxidizing in air or water. Chemically, gold is a transition metal and a group 11 element. It is one of the least reactive solid chemical elements. The metal therefore occurs often in free elemental (native) form, as nuggets or grains in rocks, in veins and in alluvial deposits. Less commonly, it occurs in minerals as gold compounds, usually with tellurium.

Gold resists attacks by individual acids, but it can be dissolved by the aqua regia (nitro-hydrochloric acid), so named because it dissolves gold. Gold also dissolves in alkaline solutions of cyanide, which have been used in mining. Gold dissolves in mercury, forming amalgam alloys. Gold is insoluble in nitric acid, which dissolves silver and base metals, a property that has long been used to confirm the presence of gold in items, giving rise to the term the acid test.

Gold has been a valuable and highly sought-after precious metal for coinage, jewelry, and other arts since long before the beginning of recorded history. Gold standards have been the most common basis for monetary policies throughout human history, being widely supplanted by fiat currency only in the late 20th century. Gold has also been frequently linked to a wide variety of symbolisms and ideologies. A total of 165,000 tonnes of gold have been mined in human history, as of 2009.[1] This is roughly equivalent to 5.3 billion troy ounces or, in terms of volume, about 8500 m3, or a cube 20.4 m on a side. The world consumption of new gold produced is about 50% in jewelry, 40% in investments, and 10% in industry.[2]

Besides its widespread monetary and symbolic functions, gold has many practical uses in dentistry, electronics, and other fields. Its high malleability, ductility, resistance to corrosion and most other chemical reactions, and conductivity of electricity lead to many uses of gold, including electric wiring, colored glass production and even gold leaf eating.

Gold is the most malleable and ductile of all metals; a single gram can be beaten into a sheet of 1 square meter, or an ounce into 300 square feet. Gold leaf can be beaten thin enough to become translucent. The transmitted light appears greenish blue, because gold strongly reflects yellow and red.[3] Such semi-transparent sheets also strongly reflect infrared light, making them useful as infrared (radiant heat) shields in visors of heat-resistant suits, and in sun-visors for spacesuits.[4]

Gold readily creates alloys with many other metals. These alloys can be produced to modify the hardness and other metallurgical properties, to control melting point or to create exotic colors (see below).[5] Gold is a good conductor of heat and electricity and reflects infrared radiation strongly. Chemically, it is unaffected by air, moisture and most corrosive reagents, and is therefore well suited for use in coins and jewelry and as a protective coating on other, more reactive, metals. However, it is not chemically inert.

Common oxidation states of gold include +1 (gold(I) or aurous compounds) and +3 (gold(III) or auric compounds). Gold ions in solution are readily reduced and precipitated out as gold metal by adding any other metal as the reducing agent. The added metal is oxidized and dissolves allowing the gold to be displaced from solution and be recovered as a solid precipitate.

High quality pure metallic gold is tasteless and scentless, in keeping with its resistance to corrosion (it is metal ions which confer taste to metals).[6]

In addition, gold is very dense, a cubic meter weighing 19,300 kg. By comparison, the density of lead is 11,340 kg/m3, and that of the densest element, osmium, is 22,610 kg/m3.

Color

Different colors of Ag-Au-Cu alloys

Whereas most other pure metals are gray or silvery white, gold is yellow. This color is determined by the density of loosely bound (valence) electrons; those electrons oscillate as a collective "plasma" medium described in terms of a quasiparticle called plasmon. The frequency of these oscillations lies in the ultraviolet range for most metals, but it falls into the visible range for gold due to subtle relativistic effects that affect the orbitals around gold atoms.[7][8] Similar effects impart a golden hue to metallic cesium (see relativistic quantum chemistry).

Common colored gold alloys such as rose gold can be created by the addition of various amounts of copper and silver, as indicated in the triangular diagram to the left. Alloys containing palladium or nickel are also important in commercial jewelry as these produce white gold alloys. Less commonly, addition of manganese, aluminium, iron, indium and other elements can produce more unusual colors of gold for various applications.[5]

Isotopes

Main article: Isotopes of gold

Gold has only one stable isotope, 197Au, which is also its only naturally occurring isotope. Thirty six radioisotopes have been synthesized ranging in atomic mass from 169 to 205. The most stable of these is 195Au with a half-life of 186.1 days. The least stable is 171Au, which decays by proton emission with a half-life of 30 µs. Most of gold's radioisotopes with atomic masses below 197 decay by some combination of proton emission, α decay, and β+ decay. The exceptions are 195Au, which decays by electron capture, and 196Au, which decays most often by electron capture (93%) with a minor β- decay path (7%).[9] All of gold's radioisotopes with atomic masses above 197 decay by β- decay.[10]

At least 32 nuclear isomers have also been characterized, ranging in atomic mass from 170 to 200. Within that range, only 178Au, 180Au, 181Au, 182Au, and 188Au do not have isomers. Gold's most stable isomer is 198m2Au with a half-life of 2.27 days. Gold's least stable isomer is 177 m2Au with a half-life of only 7 ns. 184 m1Au has three decay paths: β+ decay, isomeric transition, and alpha decay. No other isomer or isotope of gold has three decay paths.[10]

Use and applications

Monetary exchange

Gold has been widely used throughout the world as a vehicle for monetary exchange, either by issuance and recognition of gold coins or other bare metal quantities, or through gold-convertible paper instruments by establishing gold standards in which the total value of issued money is represented in a store of gold reserves.

However, production has not grown in relation to the world's economies. Today, gold mining output is declining.[11] With the sharp growth of economies in the 20th century, and increasing foreign exchange, the world's gold reserves and their trading market have become a small fraction of all markets and fixed exchange rates of currencies to gold were no longer sustained. At the beginning of World War I the warring nations moved to a fractional gold standard, inflating their currencies to finance the war effort. After World War II gold was replaced by a system of convertible currency following the Bretton Woods system. Gold standards and the direct convertibility of currencies to gold have been abandoned by world governments, being replaced by fiat currency in their stead. Switzerland was the last country to tie its currency to gold; it backed 40% of its value until the Swiss joined the International Monetary Fund in 1999.[12]

Pure gold is too soft for day-to-day monetary use and is typically hardened by alloying with copper, silver or other base metals. The gold content of alloys is measured in carats (k). Pure gold is designated as 24k. English gold coins intended for circulation from 1526 into the 1930s were typically a standard 22k alloy called crown gold, for hardness (American gold coins for circulation after 1837 contained the slightly lower amount of 0.900 fine gold, or 21.6 kt).

Investment

Main article: Gold as an investment

Many holders of gold store it in form of bullion coins or bars as a hedge against inflation or other economic disruptions. However, some economists do not believe gold serves as a hedge against inflation or currency depreciation.[13]

The ISO 4217 currency code of gold is XAU.

Modern bullion coins for investment or collector purposes do not require good mechanical wear properties; they are typically fine gold at 24k, although the American Gold Eagle, the British gold sovereign, and the South African Krugerrand continue to be minted in 22k metal in historical tradition. The special issue Canadian Gold Maple Leaf coin contains the highest purity gold of any bullion coin, at 99.999% or 0.99999, while the popular issue Canadian Gold Maple Leaf coin has a purity of 99.99%. Several other 99.99% pure gold coins are available. In 2006, the United States Mint began production of the American Buffalo gold bullion coin with a purity of 99.99%. The Australian Gold Kangaroos were first coined in 1986 as the Australian Gold Nugget but changed the reverse design in 1989. Other popular modern coins include the Austrian Vienna Philharmonic bullion coin and the Chinese Gold Panda.

Jewelry

Main article: Jewellery

Moche gold necklace depicting feline heads. Larco Museum Collection. Lima-Peru

Because of the softness of pure (24k) gold, it is usually alloyed with base metals for use in jewelry, altering its hardness and ductility, melting point, color and other properties. Alloys with lower caratage, typically 22k, 18k, 14k or 10k, contain higher percentages of copper, or other base metals or silver or palladium in the alloy. Copper is the most commonly used base metal, yielding a redder color. Eighteen-carat gold containing 25% copper is found in antique and Russian jewelry and has a distinct, though not dominant, copper cast, creating rose gold. Fourteen-carat gold-copper alloy is nearly identical in color to certain bronze alloys, and both may be used to produce police and other badges. Blue gold can be made by alloying with iron and purple gold can be made by alloying with aluminium, although rarely done except in specialized jewelry. Blue gold is more brittle and therefore more difficult to work with when making jewelry. Fourteen and eighteen carat gold alloys with silver alone appear greenish-yellow and are referred to as green gold. White gold alloys can be made with palladium or nickel. White 18-carat gold containing 17.3% nickel, 5.5% zinc and 2.2% copper is silvery in appearance. Nickel is toxic, however, and its release from nickel white gold is controlled by legislation in Europe. Alternative white gold alloys are available based on palladium, silver and other white metals,[14] but the palladium alloys are more expensive than those using nickel. High-carat white gold alloys are far more resistant to corrosion than are either pure silver or sterling silver. The Japanese craft of Mokume-gane exploits the color contrasts between laminated colored gold alloys to produce decorative wood-grain effects.

Medicine

In medieval times, gold was often seen as beneficial for the health, in the belief that something that rare and beautiful could not be anything but healthy. Even some modern esotericists and forms of alternative medicine assign metallic gold a healing power.[15] Some gold salts do have anti-inflammatory properties and are used as pharmaceuticals in the treatment of arthritis and other similar conditions.[16] However, only salts and radioisotopes of gold are of pharmacological value, as elemental (metallic) gold is inert to all chemicals it encounters inside the body. In modern times, injectable gold has been proven to help to reduce the pain and swelling of rheumatoid arthritis and tuberculosis.[16][17]

Gold alloys are used in restorative dentistry, especially in tooth restorations, such as crowns and permanent bridges. The gold alloys' slight malleability facilitates the creation of a superior molar mating surface with other teeth and produces results that are generally more satisfactory than those produced by the creation of porcelain crowns. The use of gold crowns in more prominent teeth such as incisors is favored in some cultures and discouraged in others.

Colloidal gold preparations (suspensions of gold nanoparticles) in water are intensely red-colored, and can be made with tightly controlled particle sizes up to a few tens of nanometers across by reduction of gold chloride with citrate or ascorbate ions. Colloidal gold is used in research applications in medicine, biology and materials science. The technique of immunogold labeling exploits the ability of the gold particles to adsorb protein molecules onto their surfaces. Colloidal gold particles coated with specific antibodies can be used as probes for the presence and position of antigens on the surfaces of cells.[18] In ultrathin sections of tissues viewed by electron microscopy, the immunogold labels appear as extremely dense round spots at the position of the antigen.[19] Colloidal gold is also the form of gold used as gold paint on ceramics prior to firing.

Gold, or alloys of gold and palladium, are applied as conductive coating to biological specimens and other non-conducting materials such as plastics and glass to be viewed in a scanning electron microscope. The coating, which is usually applied by sputtering with an argon plasma, has a triple role in this application. Gold's very high electrical conductivity drains electrical charge to earth, and its very high density provides stopping power for electrons in the electron beam, helping to limit the depth to which the electron beam penetrates the specimen. This improves definition of the position and topography of the specimen surface and increases the spatial resolution of the image. Gold also produces a high output of secondary electrons when irradiated by an electron beam, and these low-energy electrons are the most commonly used signal source used in the scanning electron microscope.[20]

The isotope gold-198, (half-life 2.7 days) is used in some cancer treatments and for treating other diseases.[21]

Food and drink

  • Gold can be used in food and has the E number 175.[22]
  • Gold leaf, flake or dust is used on and in some gourmet foods, notably sweets and drinks as decorative ingredient.[23] Gold flake was used by the nobility in Medieval Europe as a decoration in food and drinks, in the form of leaf, flakes or dust, either to demonstrate the host's wealth or in the belief that something that valuable and rare must be beneficial for one's health.
  • Danziger Goldwasser (German: Gold water of Danzig) or Goldwasser (English: Goldwater) is a traditional German herbal liqueur[24] produced in what is today Gdańsk, Poland, and Schwabach, Germany, and contains flakes of gold leaf. There are also some expensive (~$1000) cocktails which contain flakes of gold leaf.[25] However, since metallic gold is inert to all body chemistry, it adds no taste nor has it any other nutritional effect and leaves the body unaltered.[26]

Industry

The 220 kg gold brick displayed in Jinguashi Gold Museum, Taiwan, Republic of China.

The world's largest gold bar has a mass of 250 kg. Toi museum, Japan.

A gold nugget of 5 mm in diameter (bottom) can be expanded through hammering into a gold foil of about 0.5 square meter. Toi museum, Japan.

  • Gold solder is used for joining the components of gold jewelry by high-temperature hard soldering or brazing. If the work is to be of hallmarking quality, gold solder must match the carat weight of the work, and alloy formulas are manufactured in most industry-standard carat weights to color match yellow and white gold. Gold solder is usually made in at least three melting-point ranges referred to as Easy, Medium and Hard. By using the hard, high-melting point solder first, followed by solders with progressively lower melting points, goldsmiths can assemble complex items with several separate soldered joints.
  • Gold can be made into thread and used in embroidery.
  • Gold produces a deep, intense red color when used as a coloring agent in cranberry glass.
  • In photography, gold toners are used to shift the color of silver bromide black-and-white prints towards brown or blue tones, or to increase their stability. Used on sepia-toned prints, gold toners produce red tones. Kodak published formulas for several types of gold toners, which use gold as the chloride.[27]
  • As gold is a good reflector of electromagnetic radiation such as infrared and visible light as well as radio waves, it is used for the protective coatings on many artificial satellites, in infrared protective faceplates in thermal protection suits and astronauts' helmets and in electronic warfare planes like the EA-6B Prowler.
  • Gold is used as the reflective layer on some high-end CDs.
  • Automobiles may use gold for heat dissipation. McLaren uses gold foil in the engine compartment of its F1 model.[28]
  • Gold can be manufactured so thin that it appears transparent. It is used in some aircraft cockpit windows for de-icing or anti-icing by passing electricity through it. The heat produced by the resistance of the gold is enough to deter ice from forming.[29]

Electronics

The concentration of free electrons in gold metal is 5.90×1022 cm−3. Gold is highly conductive to electricity, and has been used for electrical wiring in some high-energy applications (only silver and copper are more conductive per volume, but gold has the advantage of corrosion resistance). For example, gold electrical wires were used during some of the Manhattan Project's atomic experiments, but large high current silver wires were used in the calutron isotope separator magnets in the project.

Though gold is attacked by free chlorine, its good conductivity and general resistance to oxidation and corrosion in other environments (including resistance to non-chlorinated acids) has led to its widespread industrial use in the electronic era as a thin layer coating electrical connectors of all kinds, thereby ensuring good connection. For example, gold is used in the connectors of the more expensive electronics cables, such as audio, video and USB cables. The benefit of using gold over other connector metals such as tin in these applications is highly debated. Gold connectors are often criticized by audio-visual experts as unnecessary for most consumers and seen as simply a marketing ploy. However, the use of gold in other applications in electronic sliding contacts in highly humid or corrosive atmospheres, and in use for contacts with a very high failure cost (certain computers, communications equipment, spacecraft, jet aircraft engines) remains very common.[30]

Besides sliding electrical contacts, gold is also used in electrical contacts because of its resistance to corrosion, electrical conductivity, ductility and lack of toxicity.[31] Switch contacts are generally subjected to more intense corrosion stress than are sliding contacts. Fine gold wires are used to connect semiconductor devices to their packages through a process known as wire bonding.

Commercial chemistry

Gold is attacked by and dissolves in alkaline solutions of potassium or sodium cyanide, to form the salt gold cyanide—a technique that has been used in extracting metallic gold from ores in the cyanide process. Gold cyanide is the electrolyte used in commercial electroplating of gold onto base metals and electroforming.

Gold chloride (chloroauric acid) solutions are used to make colloidal gold by reduction with citrate or ascorbate ions. Gold chloride and gold oxide are used to make highly valued cranberry or red-colored glass, which, like colloidal gold suspensions, contains evenly sized spherical gold nanoparticles.[32]

History

The Turin Papyrus Map

Funerary mask of Tutankhamun

Jason returns with the golden fleece on an Apulian red-figure calyx krater, ca. 340–330 BC.

Gold has been known and used by artisans since the Chalcolithic. Gold artifacts in the Balkans appear from the 4th millennium BC, such as that found in the Varna Necropolis. Gold artifacts such as the golden hats and the Nebra disk appeared in Central Europe from the 2nd millennium BC Bronze Age.

Egyptian hieroglyphs from as early as 2600 BC describe gold, which king Tushratta of the Mitanni claimed was "more plentiful than dirt" in Egypt.[33] Egypt and especially Nubia had the resources to make them major gold-producing areas for much of history. The earliest known map is known as the Turin Papyrus Map and shows the plan of a gold mine in Nubia together with indications of the local geology. The primitive working methods are described by both Strabo and Diodorus Siculus, and included fire-setting. Large mines were also present across the Red Sea in what is now Saudi Arabia.

The legend of the golden fleece may refer to the use of fleeces to trap gold dust from placer deposits in the ancient world. Gold is mentioned frequently in the Old Testament, starting with Genesis 2:11 (at Havilah) and is included with the gifts of the magi in the first chapters of Matthew New Testament. The Book of Revelation 21:21 describes the city of New Jerusalem as having streets "made of pure gold, clear as crystal". The south-east corner of the Black Sea was famed for its gold. Exploitation is said to date from the time of Midas, and this gold was important in the establishment of what is probably the world's earliest coinage in Lydia around 610 BC.[34] From the 6th or 5th century BC, the Chu (state) circulated the Ying Yuan, one kind of square gold coin.

In Roman metallurgy, new methods for extracting gold on a large scale were developed by introducing hydraulic mining methods, especially in Hispania from 25 BC onwards and in Dacia from 106 AD onwards. One of their largest mines was at Las Medulas in León (Spain), where seven long aqueducts enabled them to sluice most of a large alluvial deposit. The mines at Roşia Montană in Transylvania were also very large, and until very recently, still mined by opencast methods. They also exploited smaller deposits in Britain, such as placer and hard-rock deposits at Dolaucothi. The various methods they used are well described by Pliny the Elder in his encyclopedia Naturalis Historia written towards the end of the first century AD.

The Mali Empire in Africa was famed throughout the old world for its large amounts of gold. Mansa Musa, ruler of the empire (1312–1337) became famous throughout the old world for his great hajj to Mecca in 1324. When he passed through Cairo in July 1324, he was reportedly accompanied by a camel train that included thousands of people and nearly a hundred camels. He gave away so much gold that it depressed the price in Egypt for over a decade.[35] A contemporary Arab historian remarked:

Gold was at a high price in Egypt until they came in that year. The mithqal did not go below 25 dirhams and was generally above, but from that time its value fell and it cheapened in price and has remained cheap till now. The mithqal does not exceed 22 dirhams or less. This has been the state of affairs for about twelve years until this day by reason of the large amount of gold which they brought into Egypt and spent there [...]

—Chihab Al-Umari[36]

The European exploration of the Americas was fueled in no small part by reports of the gold ornaments displayed in great profusion by Native American peoples, especially in Central America, Peru, Ecuador and Colombia. The Aztecs regarded gold as literally the product of the gods, calling it "god excrement" (teocuitlatl in Nahuatl).[37] However, for the indigenous peoples of North America, gold was considered useless, and they saw much greater value in other minerals, which were directly related to their utility, such as obsidian, flint, and slate.[38]

Although the price of some platinum group metals can be much higher, gold has long been considered the most desirable of precious metals, and its value has been used as the standard for many currencies (known as the gold standard) in history. Gold has been used as a symbol for purity, value, royalty, and particularly roles that combine these properties. Gold as a sign of wealth and prestige was ridiculed by Thomas More in his treatise Utopia. On that imaginary island, gold is so abundant that it is used to make chains for slaves, tableware and lavatory-seats. When ambassadors from other countries arrive, dressed in ostentatious gold jewels and badges, the Utopians mistake them for menial servants, paying homage instead to the most modestly dressed of their party.

There is an age-old tradition of biting gold to test its authenticity. Although this is certainly not a professional way of examining gold, the bite test should score the gold because gold is a soft metal, as indicated by its score on the Mohs' scale of mineral hardness. The purer the gold the easier it should be to mark it. Painted lead can cheat this test because lead is softer than gold (and may invite a small risk of lead poisoning if sufficient lead is absorbed by the biting).

Gold in antiquity was relatively easy to obtain geologically; however, 75% of all gold ever produced has been extracted since 1910.[39] It has been estimated that all gold ever refined would form a single cube 20 m (66 ft) on a side (equivalent to 8,000 m3).[39]

One main goal of the alchemists was to produce gold from other substances, such as lead — presumably by the interaction with a mythical substance called the philosopher's stone. Although they never succeeded in this attempt, the alchemists promoted an interest in what can be done with substances, and this laid a foundation for today's chemistry. Their symbol for gold was the circle with a point at its center (☉), which was also the astrological symbol and the ancient Chinese character for the Sun. For modern creation of artificial gold by neutron capture, see gold synthesis.

During the 19th century, gold rushes occurred whenever large gold deposits were discovered. The first documented discovery of gold in the United States was at the Reed Gold Mine near Georgeville, North Carolina in 1803.[40] The first major gold strike in the United States occurred in a small north Georgia town called Dahlonega.[41] Further gold rushes occurred in California, Colorado, the Black Hills, Otago in New Zealand, Australia, Witwatersrand in South Africa, and the Klondike in Canada.

Because of its historically high value, much of the gold mined throughout history is still in circulation in one form or another.

Occurrence

This 156-ounce (4.85 kg) nugget was found by an individual prospector in the Southern California Desert using a metal detector.

Gold's atomic number of 79 makes it one of the higher atomic number elements which occur naturally. Like all elements with atomic numbers larger than iron, gold is thought to have been formed from a supernova nucleosynthesis process. Their explosions scattered metal-containing dusts (including heavy elements like gold) into the region of space in which they later condensed into our solar system and the Earth.[42]

On Earth, whenever elemental gold occurs, it appears most often as a metal solid solution of gold with silver, i.e. a gold silver alloy. Such alloys usually have a silver content of 8–10%. Electrum is elemental gold with more than 20% silver. Electrum's color runs from golden-silvery to silvery, dependent upon the silver content. The more silver, the lower the specific gravity.

Relative sizes of an 860 kg block of gold ore, and the 30 g of gold that can be extracted from it. Toi gold mine, Japan.

Gold left behind after a pyrite cube was oxidized to hematite. Note cubic shape of cavity.

Gold is found in ores made up of rock with very small or microscopic particles of gold. This gold ore is often found together with quartz or sulfide minerals such as Fool's Gold, which is a pyrite.[43] These are called lode deposits. Native gold is also found in the form of free flakes, grains or larger nuggets that have been eroded from rocks and end up in alluvial deposits (called placer deposits). Such free gold is always richer at the surface of gold-bearing veins owing to the oxidation of accompanying minerals followed by weathering, and washing of the dust into streams and rivers, where it collects and can be welded by water action to form nuggets.

Gold sometimes occurs combined with tellurium as the minerals calaverite, krennerite, nagyagite, petzite and sylvanite, and as the rare bismuthide maldonite (Au2Bi) and antimonide aurostibite (AuSb2). Gold also occurs in rare alloys with copper, lead, and mercury: the minerals auricupride (Cu3Au), novodneprite (AuPb3) and weishanite ((Au, Ag)3Hg2).

Recent research suggests that microbes can sometimes play an important role in forming gold deposits, transporting and precipitating gold to form grains and nuggets that collect in alluvial deposits.[44]

The world's oceans contain gold. Measured concentrations of gold in the Atlantic and Northeast Pacific are 50–150 fmol/L or 10–30 parts per quadrillion (about 10–30 g/km3). In general, Au concentrations for Atlantic and Pacific samples are the same (~50 fmol/L) but less certain. Mediterranean deep waters contain higher concentrations of Au (100–150 fmol/L) attributed to wind-blown dust and/or rivers. At 10 parts per quadrillion the Earth's oceans would hold 15,000 tons of gold.[45] These figures are three orders of magnitude less than reported in the literature prior to 1988, indicating contamination problems with the earlier data.

A number of people have claimed to be able to economically recover gold from sea water, but so far they have all been either mistaken or crooks. A so-called reverend, Prescott Jernegan ran a gold-from-seawater swindle in the United States in the 1890s. A British fraudster ran the same scam in England in the early 1900s.[46] Fritz Haber (the German inventor of the Haber process) did research on the extraction of gold from sea water in an effort to help pay Germany's reparations following World War I.[47] Based on the published values of 2 to 64 ppb of gold in seawater a commercially successful extraction seemed possible. After analysis of 4,000 water samples yielding an average of 0.004 ppb it became clear that the extraction would not be possible and he stopped the project.[48] No commercially viable mechanism for performing gold extraction from sea water has yet been identified. Gold synthesis is not economically viable and is unlikely to become so in the foreseeable future.

Gallery of specimens of crystalline native gold

  • Native gold nuggets

  • "Rope gold" from Lena River, Sakha Republic, Russia. Size: 2.5×1.2×0.7 cm.

  • Crystalline gold from Mina Zapata, Santa Elena de Uairen, Venezuela. Size: 3.7×1.1×0.4 cm.

  • Gold leaf from Harvard Mine, Jamestown, California, USA. Size 9.3×3.2× >0.1 cm.

Production

Main articles: Gold prospecting, Gold mining, Gold extraction, and List of countries by gold production

Gold output in 2005

The entrance to an underground gold mine in Victoria, Australia

Pure gold precipitate produced by the aqua regia refining process

Gold extraction is most economical in large, easily mined deposits. Ore grades as little as 0.5 mg/kg (0.5 parts per million, ppm) can be economical. Typical ore grades in open-pit mines are 1–5 mg/kg (1–5 ppm); ore grades in underground or hard rock mines are usually at least 3 mg/kg (3 ppm). Because ore grades of 30 mg/kg (30 ppm) are usually needed before gold is visible to the naked eye, in most gold mines the gold is invisible.

Since the 1880s, South Africa has been the source for a large proportion of the world's gold supply, with about 50% of all gold ever produced having come from South Africa. Production in 1970 accounted for 79% of the world supply, producing about 1,480 tonnes. 2008 production was 2,260 tonnes. In 2007 China (with 276 tonnes) overtook South Africa as the world's largest gold producer, the first time since 1905 that South Africa has not been the largest.[49]

The city of Johannesburg located in South Africa was founded as a result of the Witwatersrand Gold Rush which resulted in the discovery of some of the largest gold deposits the world has ever seen. Gold fields located within the basin in the Free State and Gauteng provinces are extensive in strike and dip requiring some of the world's deepest mines, with the Savuka and TauTona mines being currently the world's deepest gold mine at 3,777 m. The Second Boer War of 1899–1901 between the British Empire and the Afrikaner Boers was at least partly over the rights of miners and possession of the gold wealth in South Africa.

Other major producers are the United States, Australia, Russia and Peru. Mines in South Dakota and Nevada supply two-thirds of gold used in the United States. In South America, the controversial project Pascua Lama aims at exploitation of rich fields in the high mountains of Atacama Desert, at the border between Chile and Argentina. Today about one-quarter of the world gold output is estimated to originate from artisanal or small scale mining.[50]

After initial production, gold is often subsequently refined industrially by the Wohlwill process which is based on electrolysis or by the Miller process, that is chlorination in the melt. The Wohlwill process results in higher purity, but is more complex and is only applied in small-scale installations.[51][52] Other methods of assaying and purifying smaller amounts of gold include parting and inquartation as well as cupellation, or refining methods based on the dissolution of gold in aqua regia.[53]

At the end of 2009, it was estimated that all the gold ever mined totaled 165,000 tonnes[1] This can be represented by a cube with an edge length of about 20.28 meters. At $1,600 per ounce, 165,000 tons of gold would have a value of $8.8 trillion.

The average gold mining and extraction costs were about US$317/oz in 2007, but these can vary widely depending on mining type and ore quality; global mine production amounted to 2,471.1 tonnes.[54]

Most of the gold used in manufactured goods, jewelry, and works of art is eventually recovered and recycled. Some gold used in spacecraft and electronic equipment cannot be profitably recovered, but it is generally used in these applications in the form of extremely thin layers or extremely fine wires so that the total quantity used (and lost) is small compared to the total amount of gold produced and stockpiled. Thus there is little true consumption of new gold in the economic sense; the stock of gold remains essentially constant (at least in the modern world) while ownership shifts from one party to another.[55] One estimate is that 85% of all the gold ever mined is still available in the world's easily recoverable stocks, with 15% having been lost, or used in non-recyclable industrial uses.[56]

Consumption

The consumption of gold produced in the world is about 50% in jewelry, 40% in investments, and 10% in industry.

India is the world's largest single consumer of gold, as Indians buy about 25% of the world's gold,[57] purchasing approximately 800 tonnes of gold every year, mostly for jewelry. India is also the largest importer of gold; in 2008, India imported around 400 tonnes of gold.[58]

Gold jewellery consumption by country (in Tonnes).[59] Country 2010 2009 % Change India 745.70 442.37 +69 Greater China 428.00 376.96 +14 United States 128.61 150.28 -14 Turkey 74.07 75.16 -1 Saudi Arabia 72.95 77.75 -6 Russia 67.50 60.12 +12 United Arab Emirates 63.37 67.60 -6 Egypt 53.43 56.68 -6 Indonesia 32.75 41.00 -20 United Kingdom 27.35 31.75 -14 Other Gulf Countries 21.97 24.10 -10 Japan 18.50 21.85 -15 South Korea 15.87 18.83 -16 Vietnam 14.36 15.08 -5 Thailand 6.28 7.33 -14 Total 1805.60 1508.70 +20 Other Countries 254.0 251.6 +1 World Total 2059.6 1760.3 +17

Chemistry

Gold (III) chloride solution in water

Although gold is a noble metal, it forms many and diverse compounds. The oxidation state of gold in its compounds ranges from −1 to +5, but Au(I) and Au(III) dominate its chemistry. Au(I), referred to as the aurous ion, is the most common oxidation state with soft ligands such as thioethers, thiolates, and tertiary phosphines. Au(I) compounds are typically linear. A good example is Au(CN)2−, which is the soluble form of gold encountered in mining. Curiously, aurous complexes of water are rare. The binary gold halides, such as AuCl, form zigzag polymeric chains, again featuring linear coordination at Au. Most drugs based on gold are Au(I) derivatives.[60]

Au(III) (auric) is a common oxidation state, and is illustrated by gold(III) chloride, Au2Cl6. The gold atom centers in Au(III) complexes, like other d8 compounds, are typically square planar, with chemical bonds that have both covalent and ionic character.

Aqua regia, a 1:3 mixture of nitric acid and hydrochloric acid, dissolves gold. Nitric acid oxidizes the metal to +3 ions, but only in minute amounts, typically undetectable in the pure acid because of the chemical equilibrium of the reaction. However, the ions are removed from the equilibrium by hydrochloric acid, forming AuCl4− ions, or chloroauric acid, thereby enabling further oxidation.

Some free halogens react with gold.[61] Gold also reacts in alkaline solutions of potassium cyanide. With mercury, it forms an amalgam.

Less common oxidation states

Less common oxidation states of gold include −1, +2, and +5.

The −1 oxidation state occurs in compounds containing the Au− anion, called aurides. Caesium auride (CsAu), for example, crystallizes in the caesium chloride motif.[62] Other aurides include those of Rb+, K+, and tetramethylammonium (CH3)4N+.[63]

Gold(II) compounds are usually diamagnetic with Au–Au bonds such as [Au(CH2)2P(C6H5)2]2Cl2. The evaporation of a solution of Au(OH)3 in concentrated H2SO4 produces red crystals of gold(II) sulfate, AuSO4. Originally thought to be a mixed-valence compound, it has been shown to contain Au4+

2 cations.[64][65] A noteworthy, legitimate gold(II) complex is the tetraxenonogold(II) cation, which contains xenon as a ligand, found in [AuXe4](Sb2F11)2.[66]

Gold pentafluoride and its derivative anion, AuF−

6, is the sole example of gold(V), the highest verified oxidation state.[67]

Some gold compounds exhibit aurophilic bonding, which describes the tendency of gold ions to interact at distances that are too long to be a conventional Au–Au bond but shorter that van der Waals bonding. The interaction is estimated to be comparable in strength to that of a hydrogen bond.

Mixed valence compounds

Well-defined cluster compounds are numerous.[63] In such cases, gold has a fractional oxidation state. A representative example is the octahedral species {Au(P(C6H5)3)}62+. Gold chalcogenides, such as gold sulfide, feature equal amounts of Au(I) and Au(III).

Toxicity

Pure metallic (elemental) gold is non-toxic and non-irritating when ingested[68] and is sometimes used as a food decoration in the form of gold leaf. Metallic gold is also a component of the alcoholic drinks Goldschläger, Gold Strike, and Goldwasser. Metallic gold is approved as a food additive in the EU (E175 in the Codex Alimentarius). Although gold ion is toxic, the acceptance of metallic gold as a food additive is due to its relative chemical inertness, and resistance to being corroded or transformed into soluble salts (gold compounds) by any known chemical process which would be encountered in the human body.

Soluble compounds (gold salts) such as gold chloride are toxic to the liver and kidneys. Common cyanide salts of gold such as potassium gold cyanide, used in gold electroplating, are toxic by virtue of both their cyanide and gold content. There are rare cases of lethal gold poisoning from potassium gold cyanide.[69][70] Gold toxicity can be ameliorated with chelation therapy with an agent such as Dimercaprol.

Gold metal was voted Allergen of the Year in 2001 by the American Contact Dermatitis Society. Gold contact allergies affect mostly women.[71] Despite this, gold is a relatively non-potent contact allergen, in comparison with metals like nickel.[72]

Price

Like other precious metals, gold is measured by troy weight and by grams. When it is alloyed with other metals the term carat or karat is used to indicate the purity of gold present, with 24 carats being pure gold and lower ratings proportionally less. The purity of a gold bar or coin can also be expressed as a decimal figure ranging from 0 to 1, known as the millesimal fineness, such as 0.995 being very pure.

The price of gold is determined through trading in the gold and derivatives markets, but a procedure known as the Gold Fixing in London, originating in September 1919, provides a daily benchmark price to the industry. The afternoon fixing was introduced in 1968 to provide a price when US markets are open.

Historically gold coinage was widely used as currency; when paper money was introduced, it typically was a receipt redeemable for gold coin or bullion. In a monetary system known as the gold standard, a certain weight of gold was given the name of a unit of currency. For a long period, the United States government set the value of the US dollar so that one troy ounce was equal to $20.67 ($664.56/kg), but in 1934 the dollar was devalued to $35.00 per troy ounce ($1125.27/kg). By 1961, it was becoming hard to maintain this price, and a pool of US and European banks agreed to manipulate the market to prevent further currency devaluation against increased gold demand.

Swiss-cast 1 kg gold bar

On March 17, 1968, economic circumstances caused the collapse of the gold pool, and a two-tiered pricing scheme was established whereby gold was still used to settle international accounts at the old $35.00 per troy ounce ($1.13/g) but the price of gold on the private market was allowed to fluctuate; this two-tiered pricing system was abandoned in 1975 when the price of gold was left to find its free-market level. Central banks still hold historical gold reserves as a store of value although the level has generally been declining. The largest gold depository in the world is that of the U.S. Federal Reserve Bank in New York, which holds about 3%[73] of the gold ever mined, as does the similarly laden U.S. Bullion Depository at Fort Knox. In 2005 the World Gold Council estimated total global gold supply to be 3,859 tonnes and demand to be 3,754 tonnes, giving a surplus of 105 tonnes.[74]

Since 1968 the price of gold has ranged widely, from a high of $850/oz ($27,300/kg) on January 21, 1980, to a low of $252.90/oz ($8,131/kg) on June 21, 1999 (London Gold Fixing).[75] The period from 1999 to 2001 marked the "Brown Bottom" after a 20-year bear market.[76] Prices increased rapidly from 1991, but the 1980 high was not exceeded until January 3, 2008 when a new maximum of $865.35 per troy ounce was set.[77] Another record price was set on March 17, 2008 at $1023.50/oz ($32,900/kg).[77] In late 2009, gold markets experienced renewed momentum upwards due to increased demand and a weakening US dollar. On December 2, 2009, Gold passed the important barrier of US$1200 per ounce to close at $1215.[78] Gold further rallied hitting new highs in May 2010 after the European Union debt crisis prompted further purchase of gold as a safe asset.[79][80] On March 1, 2011, gold hit a new all-time high of $1432.57, based on investor concerns regarding ongoing unrest in North Africa as well as in the Middle East.[81]

Since April 2001 the gold price has more than quintupled in value against the US dollar, hitting a new all-time high of $1507.70,[82] prompting speculation that this long secular bear market has ended and a bull market has returned.[83]

Symbolism

Gold bars at the Emperor Casino in Macau

Gold has been highly valued in many societies throughout the ages. In keeping with this it has often had a strongly positive symbolic meaning closely connected to the values held in the highest esteem in the society in question. Gold may symbolize power, strength, wealth, warmth, happiness, love, hope, optimism, intelligence, justice, balance, perfection, summer, harvest and the sun.

Great human achievements are frequently rewarded with gold, in the form of gold medals, golden trophies and other decorations. Winners of athletic events and other graded competitions are usually awarded a gold medal (e.g., the Olympic Games). Many awards such as the Nobel Prize are made from gold as well. Other award statues and prizes are depicted in gold or are gold plated (such as the Academy Awards, the Golden Globe Awards, the Emmy Awards, the Palme d'Or, and the British Academy Film Awards).

Aristotle in his ethics used gold symbolism when referring to what is now commonly known as the "golden mean". Similarly, gold is associated with perfect or divine principles, such as in the case of the "golden ratio".

Gold represents great value. Respected people are treated with the most valued rule, the "golden rule". A company may give its most valued customers "gold cards" or make them "gold members". We value moments of peace and therefore we say: "silence is golden". In Greek mythology there was the "golden fleece".

Gold is further associated with the wisdom of aging and fruition. The fiftieth wedding anniversary is golden. Our precious latter years are sometimes considered "golden years". The height of a civilization is referred to as a "golden age".

In Christianity gold has sometimes been associated with the extremities of utmost evil and the greatest sanctity. In the Book of Exodus, the Golden Calf is a symbol of idolatry. In the Book of Genesis, Abraham was said to be rich in gold and silver, and Moses was instructed to cover the Mercy Seat of the Ark of the Covenant with pure gold. In Christian art the halos of Christ, Mary and the Christian saints are golden.

Medieval kings were inaugurated under the signs of sacred oil and a golden crown, the latter symbolizing the eternal shining light of heaven and thus a Christian king's divinely inspired authority. Wedding rings have long been made of gold. It is long lasting and unaffected by the passage of time and may aid in the ring symbolism of eternal vows before God and/or the sun and moon and the perfection the marriage signifies. In Orthodox Christianity, the wedded couple is adorned with a golden crown during the ceremony, an amalgamation of symbolic rites.

In popular culture gold holds many connotations but is most generally connected to terms such as good or great, such as in the phrases: "has a heart of gold", "that's golden!", "golden moment", "then you're golden!" and "golden boy". Gold also still holds its place as a symbol of wealth and through that, in many societies, success.

引用出處:

http://en.wikipedia.org/wiki/Gold

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金www.tool-tool.com

Gold)是一種化學元素,化學符號是Au, 原子序數是79。金是一種廣受歡迎的貴金屬,在幾世紀以來都被用作貨幣、保值物(store of value)及珠寶。在自然界中,金出現在岩石中的金塊或金粒、地下礦脈及沖積層中。金亦是貨幣金屬之一。金在室溫下為固體、密度高、柔軟、光亮,其延展 性及延性均是已知金屬中最高的。純金的亮黃色在傳統上被認為具有吸引力。

在布雷頓森林協定結束前,金是金本位貨幣制度的基石。金條的ISO貨幣代碼是XAU

金在現代工業的應用層面有牙醫學與電子學。在傳統上,金對氧化侵蝕的高抵抗性是人們使用它的原因之一。

化 學上,金是一種過渡金屬,在溶解後可以形成三價及單價正離子。金與大部分化學物都不會發生化學反應,但可以被氯、氟、王水及氰化物侵蝕。金能夠被水銀溶 解,形成汞齊(但這並非化學反應);能夠溶解銀及卑金屬的硝酸不 能溶解金。以上兩個性質成為黃金精煉技術的基礎,分別稱為「加銀分金法」(inquartation)及「金銀分離法」(parting)。此外,硝酸可 用來鑒別物品里是否含有金元素,這一古老的方法亦是英語諺語「acid test」的語源,意指用「測試黃金的標準」來測試目標物是否名副其實。

延性及展性

金 是金屬中延性及展性最高的──一克的金可以打成一平方米的薄片,或者說是一盎司的金可以打成300平方尺。金葉甚至可以被打薄至透明,透過金葉的光會顯露 出綠藍色,因為金反射黃色光及紅色光的能力很強。因延展性非常好,黃金可以打成金箔。金箔用於塑像、建築、工藝品的貼金,常見於寺廟、教堂內的裝飾貼金。 金箔也可入中藥。

[編輯] 與其他物質的反應

金可以很容易便與其他金屬形成合金。那些製 成的合金可以增加硬度或製造奇特的顏色(見下)。金是熱和電的良導體,亦不受地球大氣層及大部分反應物影響。熱、濕氣、氧及大部分侵蝕劑只對金有少量化學 影響,令金適合作為硬幣及珠寶;相反地,鹵素可以與金起化學反應,而王水則可以通過形成氯金酸根離子(AuCl4−)溶解金。

[編輯] 金的氧化及還原

常 見金的氧化態包括+1(一價金)及+3(三價金)。溶液中的金離子可以容易地被還原及沉澱成為金單質,方法是透過加入其他金屬作還原劑。所加入的金屬被氧 化成為金屬離子後溶於水中,而金離子被還原為0價後形成沉澱。澳洲國立大學法蘭克·理斯(Frank Reith)近期進行研究顯示微生物在金沉澱物的形成中發揮著重要作用:它們運送及沉澱金令金在沖積沉澱物中形成金粒或金塊狀[1]。

[編輯] 顏色

其他金屬顏色通常是銀灰色的,因為它們的「電子海」能夠吸收及放出的光子頻率範圍較大,覆蓋了各種色光的波長範圍。金的反應則不同,因為相對論量子化學(relativistic quantum chemistry)中微妙的相對論效應影響了金原子的原子軌域[2]。

[編輯] 其他性質

純金是無味道的,因為它非常耐侵蝕(其他金屬的味道源自金屬離子)。另外,金的密度相當高,一立方米的金重量為19,320千克。與此比較起來,鉛的密度為11,340 kg/m³,而密度最高的元素是鋨,其密度為22,661 kg/m³。

金融交易

在 很多國家,金是貨幣交易的標準,也會用來製作硬幣及珠寶。由於純金太軟,所以金通常會與銅及其他卑金屬製成合金來增加硬度。金在合金的含量會以克拉(k) 來量度,而純金則是24k。在1526年至1930年代流通的金幣,由於其硬度的關係,通常會是22k合金,稱為皇冠金。但在今天,金已不再是日常流通貨 幣角色。

美國鷹幣背面。

[編輯] 收藏用金幣

現 在,貴金屬幣主要用作收藏或投資,所以通常是24k的。然而,美國鷹幣及英國沙弗林金幣仍因為歷史因素而被製成22k。加拿大楓葉金幣在眾多貴金屬幣中擁 有最高的純度,為99.999%(準確度:0.99999)。現代部分其他有99.99%純度的金幣有「澳洲金袋鼠」(它最早以澳洲金塊的形式在1986 年出現,而袋鼠主題則是在1989年加入)、部分澳洲農曆系列的金幣[3] 及奧地利愛樂金幣[4]。美國鑄幣局在2006年起發行的美國水牛金幣亦有99.99%的純度。

[編輯] 珠寶

[編輯] 原材料

由 於24k純金柔軟,所以在作珠寶時,金常常會被製成合金以改變硬度、延展性、熔點、顏色及其它特性。在22k、18k、14k或10k的合金中,會含有較 高成分的銅、銀、鈀或其他卑金屬。銅是卑金屬中最常用的,會使合金有偏紅的色澤。在數百年前及俄羅斯的珠寶中也有以銅模鑄造,含25%銅的18k金—玫瑰 金。而14k金銅合金與部分青銅合金顏色幾乎一樣,兩者皆可用作製作徽章。 藍金是由和鐵製成合金而成,但因為藍金較脆弱,所以較難使用在珠寶製作上。紫金是由和 鋁製成合金而成,通常只用在專門的珠寶上。14k或18k的金與銀製成合金後呈綠黃色,所以被稱為綠金。而金與鈀或鎳製成合金則可形成白金合金。白色 18k金合金呈銀色,並含有17.3%鎳、5.5%鋅及2.2%銅。但由於鎳有毒,受歐洲法律限制,所以有時會用另一種方法,用鈀、銀及其他白色金屬製造 白金合金。[5]但是它的製作成本比前者為高。高純度的白金合金比起銀或純銀的抗侵蝕能力高很多。文 日本工藝品木目金充分利用了不同金合金間的顏色對比,製造出裝飾性如同木紋年輪的效果。

[編輯] 焊料

由金製造的焊錫或銅焊通常用作高溫硬焊或連接金製珠寶的部件。金匠利用獨立焊錫介面組合複雜物件。金焊錫通常有三種不同硬度,硬度高的焊錫會被優先使用,其次是較低硬度的焊錫。金焊錫必須與連接物品的純度相同。合金會在嚴格監控下製造,使它們的顏色與黃金或白金吻合。

在台灣金瓜石黃金博物園區展出的220kg金磚。

[編輯] 醫療

[編輯] 另類醫療

在 中世紀,由於金罕有及漂亮,所以被認為對健康有益(雖然實際上不是)。現在,隱微術(Esotericism)者仍認為金有治療疾病的力量,並用作另類醫 療。其實,部分金的鹽的確有防止發炎的性質,並被用作治療關節炎。但由於金屬狀態的金對所有體內的化學反應呈現惰性反應,所以只有金的鹽及其放射性同位素 有醫學價值。

[編輯] 牙醫學

金合金多在牙科修復學上使用,特別是牙齒修復,例如牙冠及永久牙橋。金合金的細微延展性,可令表面與其他牙齒吻合,所以修復效果比陶瓷製的大臼齒好。在文化角度,有些文化喜歡製作金牙齒在門牙上。

一個有金牙的塔吉克族女人。

[編輯] 膠體金

膠 體金是金奈米顆粒的膠體溶液,在水中呈深紅色。它是由檸檬酸鹽或抗壞血酸鹽的還原反應來還原溶液中的氯金酸,然後在奈米技術下製成。膠體金多用在醫學、生 物學及材料科學上。免疫膠體金標記技術充分發揮了金粒子吸收蛋白質分子到其表面的能力。有些有抗體塗層的膠體金粒子更可偵察細胞表面的抗原。[6]在電子 顯微鏡觀察下,免疫膠體金會集中在抗原上。[7] 除醫學用除外,膠體金亦用作金色顏料,塗在燒製前的陶瓷上。

[編輯] 輻射治療

  • 金的同位素金-198(半衰期:2.7日),可以用作部分癌症及其他疾病的治療[8]。

[編輯] 食用

格但斯克金箔酒。

金 箔是鋪在美食上的金薄片或粉末,多用作糖果及飲品上的裝飾[9]。金箔在中世紀歐洲以薄片或粉末形式,被貴族加在食物及飲品中,以突顯貴族的富裕、食品的 罕有及珍貴或健康。用作食物添加劑的金的E編碼為175。格但斯克金箔酒(俗稱黃金水),是一種在波蘭格但斯克及德國施瓦巴赫生產,含有金葉片的傳統草藥 利口酒。部分昂貴的雞尾酒亦有加有金箔[10]。金箔不會與身體有任何化學作用,所以它沒有味道或營養價值,並在毫無改變下被排泄出來。

[編輯] 電力傳導

[編輯] 高能量傳導用途

金的金屬的電子密度為5.90×1022 cm−3。金有十分高的電傳導性,所以被用作含高電流的電線(雖然以相同容量計算銀比金有更高的電傳導性,但金有抗侵蝕的優點),例如曼哈頓計劃中的原子實驗。然而,在實驗中,電磁型同位素分離器的磁石上使用了高電流銀電線。

[編輯] 電子接件

雖 然金會被氯氣侵蝕,但由於其高傳導性、及高抗氧化、抗環境侵蝕(包括能夠抵抗其他非含氯的酸),所以被廣泛應用在電子工業上,令電線接件有良好連接。例如 在昂貴的電子接件連接線,例如聲音、圖像及通用序列匯流排的連接線。但使用金電線卻有很大爭議。它常被影音專家批評不必要,而且被視為市場營銷的伎倆。某 些電子測量儀器的接頭也會鍍金,以避免氧化。但金在其他應用層面,例如高濕度、高腐蝕性的大氣電子接觸、失敗率高的接觸,例如部分電腦、通訊設備、太空飛 行器、噴射機引擎等等仍十分普遍,而且在未來亦不太可能被其他金屬取代。

[編輯] 開關接觸

除了電力接觸外,金亦應用在開關電力接觸上,因為金抗侵蝕、高導電性、高延性及無毒[11]。因為開關接觸通常會比電子接觸更易侵蝕。

[編輯] 電磁輻射的反射體

由於金是電磁輻射的優良反射體,所以它被用作人造衛星、保暖救生衣的紅外線保護面層、太空人的頭盔及電子戰機如EA-6徘徊者式電子作戰機的保護層。另外,金也用作部分金唱片反射層。

[編輯] 攝影調色劑

在攝影上,金調色劑可把溴化銀的黑白相片變成棕色或藍色色調,或增加它們的穩定性。在棕褐色調相片中,金調色劑會令相片變成偏紅色調。柯達有幾種金調色劑,使用了金氯化物[12]。

受掃描電子顯微鏡觀察前的加上金塗層的昆蟲樣本。

[編輯] 電子顯微鏡的傳導物質

金 或金與鈀的合金在掃描電子顯微鏡中,擔當了生物樣本及其他非傳導物質,如塑膠及玻璃,傳導的角色。塗層以氬電漿的濺鍍方式加上。金的高電傳導性把電荷導向 地面,而其高電子密度令掃描電子顯微鏡電子束有停止電子力量,有助限制電子束穿透樣本的深度。這有助增加對樣本位置及其表面形狀的測量精確度,及增加圖像 的空間解析度。金在電子束照射下,亦會製造一個次級發射,這些低能量電子通常會作為掃描電子顯微鏡訊號來源。

[編輯] 其他

  • 金可製成刺繡用金線。
  • 氯化金及氧化金可用作茶色玻璃及紅色玻璃的染色劑,以加入相同大小的球狀金奈米粒子去形成深紅色。
  • 很多比賽及榮譽如奧林匹克運動會及諾貝爾獎,會頒發金牌給得獎者。
  • 金可作汽車隔熱用途。麥拿輪F1在其引擎間隔中使用金箔[13]。
  • 金會受到鉀的鹼性溶液或鈉的氰化物侵蝕及溶解,而金的氰化物可把金電鍍在其他卑金屬上,或作為電鑄的電解質。

[編輯] 歷史

杜林紙草地圖,顯示礦藏位置。

[編輯] 早期的黃金描述

金 在史前時期已經被認知及高度重視。它可能是人類最早使用的金屬,被用於裝飾及儀式。埃及象形文字早在前2600年已經有金的描述,米坦尼國王圖什拉塔 (Tushratta)稱金在埃及「比泥土還多」[14]。埃及及努比亞等國家和地區擁有的資源令它們在大部分歷史中成為主要的黃金產地。最早已知的地圖 是在前1320年的杜林紙草地圖(Turin Papyrus Map)[15],顯示金礦在努比亞的分佈及當地地質的標示。原始的採礦方法由斯特拉波描述得知,當中包括放火。大型金礦亦在紅海對岸產生,現今為沙烏地 阿拉伯。

[編輯] 前6世紀至前1世紀的黃金

在此期間,黃金開始被人們以貨幣的形式使 用。最早已知使用金作貨幣的地方為呂底亞,在前700年呂底亞便以銀和金作合金的形式製成錢幣。在前6世紀或前5世紀期間的中國,一種稱為郢爰的金幣在楚 國 流通。古希臘約在前550年便在中東及地中海地區開採黃金。在前323年,希臘人的採礦地點分佈由直布羅陀遠至小亞細亞和埃及[15]。當時希臘的首飾主 題以人或動物的外形為主,經典例子有當時的阿加曼農黃金面具(Mask of Agamemnon)與及其他戒指[16]。

[編輯] 前1世紀至2世紀的黃金

拉斯.梅杜拉斯的環景攝影

開 採黃金的技術在此時得到提升。古羅馬人發展出一種利用水力採礦(hydraulic mining)來大型開採金的新方法,特別由前25年開始在西班牙及由150年在羅馬尼亞開始使用。其中一個最大的金礦位於西班牙加利西亞的拉斯.梅杜拉 斯(Las Médulas),在那處有七個長形高架渠令他們可以淘洗出大部分的沖積礦物。在外西凡尼亞 Roşia Montană 的金礦亦十分大,直到最近仍然有人使用露天採礦技術(opencast mining)採礦。金亦蘊藏在威爾斯較小的金礦,例如Dolaucothi 的砂礦及硬岩礦。他們使用的各種採礦方法由老普林尼在1世紀末期完成的著作博物志(Naturalis Historia)中詳細描述。在當時,黃金的主要用途在於製成首飾,而金幣的使用比希臘亦更為普遍。首飾的主題主要由描繪神話變成較平凡的幾何圖案 [16]。

[編輯] 3世紀至12世紀的黃金

在東羅馬帝國的初期,純金的首飾開始加入寶 石的元素。其主題主要是歌頌教會及國王的權力。此時黃金打制技術達到一個高峰。但在歐洲中世紀的早期,因為羅馬人開始從西南歐及西歐撤退的關係,羅馬人製 造首飾的精湛技術開始在鄰近地區消失。在撒克遜人居住地方發現的金飾看出技術的下降,其主要原因是原料的供應大部來自東羅馬帝國,而羅馬人的撤出令黃金變 得十分罕有[16]。其後伊斯蘭勢力擴大,東羅馬浮誇的黃金首飾因大部分被用來建造清真寺及資助軍事活動而開始消失[16]。但在其後黃金首飾的打造技術 及數量卻出現一個復甦,當中的例子有法蒂瑪王朝時期的黃金手鐲[17]。

[編輯] 12世紀至13世紀的黃金

在 歐洲人開闢美洲期間,常有報告指美洲原住民大量展示出金的裝飾品,特別是中美洲、秘魯及哥倫比亞。事實上,在秘魯地區前1200年的查文文化 (Chavín culture)已經開始使用黃金作裝飾。而納斯卡(Nazca)人在500年之前發展出鑄金的技術,他們利用黃金與銅製造成玫瑰金,令它的熔點下降方便 鑄造。而黃金打造技術在12世紀開始的奇姆文化(Chimu culture)達到高峰,具代表性的有用金製成的動物、雀鳥及植物,現在保存得最好的收藏品位於波哥大的波哥大黃金博物館(Museo del Oro)[16]。但在西班牙入侵後大部分的黃金被熔化並運去歐洲。

[編輯] 14世紀至16世紀的黃金

非 洲的馬里帝國在舊大陸以其擁有大量黃金而聞名。帝國統治者芒薩姆薩(Mansa Musa)(1312年–1337年)在舊大陸因為他在1324年往麥加的大朝覲而著名。當他在1324年7月經過開羅時,常有報告指他有一隊駱駝隊 (camel train)陪同,而那駱駝隊有幾千人,及接近一百隻駱駝。由於他花費了過多金錢令整個北非經濟需要一個世紀才能恢復,原因是他引起了快速的通脹 [18]。一個當時的阿拉伯歷史學家指出:

「 埃及金價在他們來的那一年之前原本是十分高昂的:1密斯卡爾(mithqal)的金其價值幾乎從不低於25迪拉姆(dirhams)。但是就在那之後金價 下跌了,金價便宜得在現今仍可反映出來。現在1密斯卡爾的金不會超過22迪拉姆,甚至更少。此事態已經持續了12年直到現在,其原因是他們攜帶大量的黃金 進入埃及並在那裡消費。[...] 」

—捷哈·烏馬裡(Chihab Al-Umari)[19]

而在歐洲,因為正值文藝 復興時期的關係,王室及教會對於黃金的裝飾有大量的需求,而剛剛自南美掠奪的黃金提供了充足的供應,令金飾技術得到迅速發展。而傑出的金匠如本韋努托·切 利尼(Benvenuto Cellini)、溫佐·雅姆尼策爾(Wenzel Jamnitzer)令使用黃金的藝術得到發展,一些當時的藝術家如桑德羅·波提切利都曾經當過金匠[16][20][21]。

[編輯] 19世紀的黃金

主條目:淘金潮

在 19世紀期間,尋金熱在有金礦發現的地方便會發生。美國最早主要淘金潮發生的地方在喬治亞州北部的一個稱為達洛尼加(Dahlonega)小鎮[22]。 期後因為發現金礦而發生的淘金潮有加利福尼亞淘金潮、科羅拉多州的派克峰淘金潮(Pike's Peak Gold Rush)、中奧塔哥淘金潮(Central Otago Gold Rush)、澳洲淘金潮(Australian gold rushes)、威特沃特斯蘭德淘金潮(Witwatersrand Gold Rush)、黑山淘金潮(Black Hills Gold Rush)及克朗代克淘金潮(Klondike Gold Rush)。因為金礦的歷史價值,很多歷史上的金礦仍然以其他方式運作。

[編輯] 黃金開採的現況

在遠古時期,金從地質角度上較易取得,但自從1910年以來發現的礦藏的75%的已經被開採[23]。估計世界上所有已經冶煉的金可以形成一個邊長20公尺的立方體,體積為8000立方公尺[23]。

[編輯] 文學中的金

一個在前340年至前330年普利亞紅彩陶器(Red-figure pottery)的雙耳噴口杯(Krater)上繪畫著伊阿宋交回金羊毛的故事。

[編輯] 希臘神話

金羊毛的傳說中的可能指在古代使用羊毛由砂礦(placer deposit)去收集金粉。黑海的東南角因為金而著名。那裡的採礦由彌達斯當國王時已經開始,而那些金的重要性在於它是製造現今世界上最早的硬幣,地點在於約前630年的呂底亞。

[編輯] 聖經

金在《舊約聖經》經常被提及,由〈創世紀〉2章11節(在哈腓拉(Havilah)),亦是在〈馬太福音〉提及的東方三博士帶來的禮物之一。〈啟示錄〉21章21節形容新耶路撒冷這城市有街道由純金製造,與水晶一樣清晰。

[編輯] 烏托邦

雖 然部分鉑組別的金屬的價格可以比金高出很多,但是金仍然長期被視為最受歡迎的貴金屬,而其價值在歷史中被用作很多貨幣的標準(稱為金本位)。金被視為純 正、珍貴、皇室及包含以上所有特徵的角色。金作為財富及威望的象徵被托馬斯·莫爾的《烏托邦》中被取笑;在那想像中的島嶼上,金常見得可以用作奴隸的鎖 鏈、餐具及坐廁。當其他國家的大使來訪時,因為他們炫耀他們的金製珠寶及獎章,烏托邦人誤會他們是僕人,而反而對那些只是適度打扮的人表示崇敬。

[編輯] 分布

[編輯] 自然狀態

金在自然中通常以其單質形式出現,即金屬狀態,但亦常與銀形成合金。天然金通常會有8-10%的銀,而銀含量超過20%稱為銀金。當銀含量上升時,物件的顏色會變得較白及較輕。

[編輯] 來源

當 礦石含有天然金時,金會以粒狀或微觀粒子狀態藏在岩石中,通常會與石英或如黃鐵礦的硫化物 礦礦脈同時出現。以上情況稱為脈狀礦床(Lode)、或是岩脈 金。天然金亦會以葉片、粒狀或大型金塊的形式出現,它們由岩石中侵蝕出來,最後形成沖積礦床的沙礫,稱為砂礦,或是沖積金。沖積金一定會比脈狀礦床的表面 含有較豐富的金,因為在岩石中的金的鄰近礦物氧化後,再經過風化作用、清洗後流入河流與溪流,在那裡透過水作收集及結合再形成金塊。

金礦石。

[編輯] 金礦石

金 亦有時會以與其他元素,特別是碲形成化合物的形式出現。例子有針狀碲金礦(calaverite)、針碲金銀礦(sylvanite)、葉碲礦 (nagyagite)、碲金銀礦(petzite)及白碲金銀礦(krennerite)[24]。金亦有極少機會與水銀以汞齊形成出現,另外亦會以一 個低濃度在海水出現。

[編輯] 生產

主條目:淘金、採金和提金

[編輯] 開採黃金的大小

有 經濟效益的提金(gold extraction)由大型容易開採礦藏中的礦石質素平均小於0.5 g/1000 kg(0.5 parts per million, ppm)便可以達成。在露天開採的金礦中,通常礦石的質素為1至5 g/1000 kg (1–5 ppm),, 地下硬岩開採(Hard rock mining)或是地下開採(Underground mining) 的礦石的質素通常至少有3 g/1000 kg (3 ppm)。由於金的質素要達到30 g/1000 kg (30 ppm)才可能被肉眼可以看得見金,所以金礦中的金是看不到的。

[編輯] 南非的產金業趨勢

世界黃金生產趨勢

自 從1880年代開始,南非便成為了世界黃金供應的一大部分來源,約有50%的已經生產的黃金由南非而來。1970年的生產佔世界供應的79%,約有 1,000噸。但在2007年只有272噸。以上明顯的下降是因為開採的困難度增加、影響工業的經濟因素的改變及安全監察的加強。在2007年中國生產了 276噸取代了南非成為了世界最大的黃金生產者,為1905年來首次取代南非的地位[25]。

[編輯] 南非金礦

位 於南非的城市約翰內斯堡因為威特沃特斯蘭德淘金潮而形成,而當時發現了有史以來世界上最大的金礦。位於自由邦及豪登省盆地的金礦礦場,走向和傾角 (strike and dip)均十分廣闊,成為世界最深的金礦,而當中Savuka及TauTona陶托那金礦是現今最深的金礦,有3,777公尺。在1899年至1901年 大英帝國與阿非利卡人或波耳人的第二次波耳戰爭的其中一個起因便是採礦工人權利及南非黃金財富所有權之爭。

[編輯] 其他主要生產者

澳洲維多利亞州往地下金礦的入口。

其 他主要的黃金生產者有美國、澳洲、中國、俄羅斯及秘魯。在南達科他州及內華達州的金礦提供了美國三分之二的黃金用量。在南美有富爭議性的帕斯瓜拉瑪礦場 (Pascua Lama)計劃,其目的為開發位於智利和阿根廷邊境的阿塔卡馬沙漠高山的豐富資源地區。現在約有四分之一的世界黃金出口估計源自手工業或是小型採礦 [26]。

[編輯] 工業精煉

在初期生產後,金接著通常會被沃爾威爾法 (Wohlwill process)或是密勒法(Miller process)作工業精煉。其他試金(assaying)和淨化(purifying) 小量黃金的方法包括加銀分金法、金銀分離法及灰吹法(cuppelation),或基於溶解金於王水中的精煉方法。

[編輯] 海水化金

[編輯] 欺騙的手法

世 界海洋含有大量的黃金,但都以濃度極低的狀態存在,可能其十億分率只有0.1-0.2。有很多人自稱能夠合乎經濟效益地從海水中取得黃金,但直到現在他們 全部均是錯誤或有欺騙成分的。普雷斯科特·傑尼根(Prescott Jernegan)在美國1890年代進行一個海水化金的詐騙。在1900年代一個英國的騙子亦進行同樣的騙局[27]。

[編輯] 商業上的嘗試

發 明哈柏法的德國籍發明家弗里茨·哈伯試圖商業地運作海水化金,希望以此幫助償還德國在第一次世界大戰的賠償。但他不幸地把海水中金的濃度估計過高,可能因 為其樣本受到污染。他的努力只可以生產少量的金,而令德國政府的虧損比其商業價值高出很多。現今仍然未有商業上可能的海水化金的方案得到確認。黃金合成在 經濟上來說不可能,而在可見未來上亦不可預見。

[編輯] 黃金的供求

2005年黃金出口。

平 均採金(gold mining)及提金的成本為每金衡制盎司US$238,但它亦會因應開採模式及礦石質素而改變。在2001年,全球金礦生產出2,604噸,即那年全部 黃金需求的67%。世界黃金協會(World Gold Council)估計在2005年全球黃金供應為3,859噸,而需求為3,754噸,有105噸的盈餘[28]。在2006年,估計所有曾經生產的黃金 有158,000噸[29]。以現在的消耗量,黃金的供應估計可以維持45年[30]。

[編輯] 價格

主條目:作為投資的黃金和金本位

黃金的高價是因為其數量極為稀少。在地球地殼中只有十億分之三是金。

自從2001年倫敦金銀市場協會(LBMA)以每金衡制盎司的美金計的早上黃金現貨定價(Gold Fix)

自從1968年每盎司的實際美元及2006年美元計的金價

[編輯] 量度方法

與 其他貴金屬相似,金是以金衡制及克計算。當它與其他金屬形成合金時則用克拉顯示其金的含量,以24克拉為純金以較少克拉的以比例計含金量則較少。而金條 (gold bar)的純度亦可以以0至1的小數表示,稱為千分純淨度(millesimal fineness),例如0.995 便是十分純淨。

[編輯] 定價方式

黃金的價格由公開市場(open market)控制,但倫敦一個在1919年九月開始稱為黃金現貨定價的體制提供黃金業一個每日的基準指標(benchmark)。而下午黃金現貨定價則在1968年出現,目的為了當美國市場開市時作一個價格本位。

[編輯] 金與貨幣的關係發展

[編輯] 固定價格

歷 史上金用來支持貨幣,在稱為金本位經濟系統中,特定重量的金會被稱為貨幣單位的一個名稱。美國政府有一段長時間設定美元的價格為每金衡制盎 司$20.67($664.56/kg),但在1934年美元的價格重新估價為每金衡制盎司$35.00($1125.27/kg)。在1961年,因為 維持此價格變得很困難,有一些美國及歐洲銀行同意操縱市場去防止貨幣因為黃金需求上升而帶來進一步貶值。

[編輯] 私人與國際市場的分開處理

在 1968年3月17日,經濟因素令黃金互助基金(gold pool)的崩潰,取而代之的是兩層的價格機制,黃金仍然用在國際戶口以每金衡制盎司$35.00($1.13/g)的舊價格處理,但私人市場的黃金價格 卻容許其自由浮動。以上兩層的價格機制在1975年被廢除,在那時黃金價格完全由自由市場控制。中央銀行仍然持有歷史性的黃金儲備作為一種保值,雖然所佔 的比重越來越少。

[編輯] 黃金儲備

世界最大的黃金儲備位於紐約的聯邦儲備銀行,持有約3%的已開採黃金[31],而同樣裝滿貴金屬、在諾克斯堡的美國金銀儲備(U.S. Bullion Depository)亦有相同持有量[32]。

[編輯] 價格記錄

由 1968年開始,黃金在開放市場的價格轉變幅度很大,倫敦黃金現貨定價由1980年1月21日$850/oz ($27,300/kg)的高位至1999年6月21日$252.90/oz ($8,131/kg)的低位[33]。1980年的高位只有到2008年1月3日的倫敦黃金現貨上午定價才能達到一個$865.35/oz的新高位 [34]。現在黃金最高位是在2011年4月11日的倫敦黃金現貨定價,為$1478.0/oz [35]。

[編輯] 長期價格趨勢

由 2001年4月黃金美元價格已經是原本價格的三倍[36],引起了此長期的熊市(secular bear market),或稱為商品大蕭條(Great Commodities Depression)已經完結,而牛市已經回歸的推測[37][38]。在2008年3月,黃金價格上升至超過US$1000[39],但其實質對名目 價值仍然低於1980年1月21日$850/oz的高位很多。以通脹計算的話,1980年的高位等於以2007年美元計的US$2400。在上一個世紀, 主要經濟危機如大蕭條、第二次世界大戰、第一次及第二次石油危機令原本已經有經過通脹調整的道指和黃金比值(Dow/Gold ratio)下降很多,大部分情況都會低於4很多[40]。在此艱難的時間,投資者會透過投資貴金屬特別是金和銀等來保障其資產。從2001年起的長期趨 勢顯示此情況現在再次出現。其主要原因在於歐洲[41] 及美國[42][43]貨幣供給的急速上升,即貨幣膨脹(monetary inflation)與美國的高雙赤字(double deficit)[44][45]。此嚴重的經濟問題令2007年次級房屋信貸風暴、高通貨膨脹和主要貨幣特別是美元對日用品大幅的折舊發生。

[編輯] 化合物

雖 然金是一種貴重金屬,它仍然會形成很多不同類型的化合物,其中金所呈氧化態大多在-1至+5之間,主要為一價金(Au(I)) 及三價金(Au(III))。一價金是最常見的氧化態,多為與較「軟」的配體(如硫醚、硫醇負離子及叔膦)形成的配合物,通常呈直線形結構。其中一個例子 便是二氰合金(I)離子(Au(CN)2−),是氰化法提金時溶液中金的主要存在形態。一價金不易與水形成配離子。二元鹵化金如氯化金(I)(AuCl) 為鋸齒形的聚合物長鏈結構,金原子以直線形排列。大部分含金藥物中的金也都為正一氧化態。[46]

三價金也是一種常見的氧化態,例子有三氯化金(AuCl3)、三氧化二金(Au2O3)、氯金酸(HAuCl4,可由金溶於王水得到)等,為d8結構,呈平面正方形構型。

[編輯] 其他價態

金 也可以呈二價、五價或負一價。二價金化合物通常含Au-Au鍵,呈反磁性,例如[Au(CH2)2P(C6H5)2]2Cl2。氙也可作配體,與金 (II)形成[AuXe4](Sb2F11)2。[47] Au(V)是已知金的最高氧化態,特徵化合物為五氟化金(AuF5)。[48] Au(-I)的例子則包括眾多金化物,如金化銫(為氯化銫型結構)、[49] 金化銣、金化鉀及金化四甲基銨((CH3)4N+Au−)。[50]

許 多含金化合物的分子晶體有親金相互作用,以R-Au…Au-R表示,也稱金鍵,強度與氫鍵相當,鍵長在300pm左右[51]。該相互作用是分子間作用力 的一個新類型,使不少晶體中存在「金鏈」、「金面」、雙分子締合(R-Au…Au-R)或大環分子內金鍵[52],並具有一些特殊性質,目前正在廣泛研究 之中。

[編輯] 混合價化合物

金也可以生成很多簇合物,[50] 其中的金多為分數氧化態,例如八面體型的{Au(P(C6H5)3)}62+,以及屬於二元金──氧族元素化合物的AuS。它含等量的Au(I)和Au(III)。

[編輯] 同位素

主條目:金的同位素

在全部金的同位素中,只有金-197屬於穩定的同位素,含量接近所有金的100%。其他18種同位素均帶有放射性,當中以金-195的半衰期最長,但只有186日。

金 曾經被建議作為核武器中一種鹽彈(Salted bomb)的原料,而鈷是另一種建議且較為人知的原料,可製成鈷彈(Cobalt bomb)。一層天然金的外罩經由熱核武器(thermonuclear weapon)放出的密集高能量中子通量(neutron flux)放射後,會發生核轉變(Nuclear transmutation)成為有半衰期2.697日的放射性同位素Au-198,製造出約.411 MeV的伽馬射線,顯著增加了武器核微粒(Nuclear fallout)幾天的放射性。此武器的製造、測試及使用仍未被人所知。

[編輯] 象徵意義

瑞士鑄造的一公斤金條

[編輯] 正反意義

在 歷史上金曾與偉大聖潔及極度邪惡兩個極端聯繫起來。在《出埃及記》中,金牛犢是偶像崇拜及反叛神的標誌。在共產主義的政治宣傳中,黃金懷錶及其黃金錶鏈是 階級敵人、資產階級和工業大亨的特點。另一方面,在創世記中,亞伯拉罕被描述為一個擁有很多金銀財寶的人,而摩西被指示要用黃金覆蓋約櫃的施恩座。卓越的 雄辯家(orator)如約翰一世便有"金口銀舌"之稱。而中國古代皇帝的說話被比喻為「金口玉言」以示鄭重。

[編輯] 金在儀式中的象徵

結 婚戒指傳統上會以黃金製造,原因是它的耐久性及不受時間過去所影響,令它不但是一個適合抵受每日磨損的物料,而且亦是一個代表關係的象徵。在東方正教會, 結婚的男女在婚禮時會以一個黃金王冠作裝飾,為婚禮中的一個象徵性儀式。金與特別的週年紀念有關,特別是50週年,如結婚紀念日稱為金婚、而登基五十週年 (golden jubilee)的英文亦與金有關聯。中世紀的國王會以受膏及黃金王冠作其正式就任的標誌,後者象徵天堂永久閃耀的光,即作為一個基督徒的國王,其權威是 受到神所啟示的。

[編輯] 現代使用黃金的象徵手法

人類的偉大成就亦會常以金作獎勵,通 常是以勳章及裝飾品的形式。競賽的勝利者或是獎項常以授與金牌的形式作獎勵,例如奧林匹克運動會及諾貝爾獎;而很多獎像則會用金製成需要的形狀,例如奧斯 卡金像獎、金球獎、艾美獎、金棕櫚獎及英國電影學院獎。信用卡公司把它們的產品透過用黃金有關的命名和顏色與財富聯繫起來,但因為希望互相勝過對方的關 係,現在金的地位已經被鉑甚至黑金卡(Centurion Card)取代。金的象徵性價值在全球分別很大,甚至在相同地區中亦有不同。例如金在土耳其是十分普遍,但在西西里島則是一個十分珍貴的禮物。

[編輯] 毒性

純 金在進食時是無毒性及非刺激性的[53],在有些時候金會以金葉的形狀用作食物的裝飾。它亦是金色杜松子酒(Goldschläger)、金箭肉桂蒸餾酒 (Gold Strike)及格但斯克金箔酒的添加物。金在歐洲聯盟已經被准許為一個食物添加物,其在國際食品法典標準(Codex Alimentarius)的E編碼為175。

金的可溶性化合物,即金鹽類(gold salts)例如在電鍍中使用的氰化金鉀對於肺臟及肝臟都有毒。現今為止只有很少因為氰化金鉀而致命的個案[54][55]。金的毒性可以透過使用如英國 抗路易毒氣藥劑(British anti-Lewisite)的螯合劑作減輕。

[編輯] 其他

這一重達156盎司(4.42千克)的金塊是一位個人探礦者在南加利福尼亞州的沙漠中發現的。

[編輯] 製備

  • 傳統上採用「淘金」法。
  • 現代開採的金礦可用氰化法提取:先以氰化鈉(NaCN)溶液處理粉碎的山金礦石,再用鋅還原。

4Au + 8NaCN + O2 + 2H2O → 4NaAu(CN)2 + 4NaOH

Zn + 2NaAu(CN)2 → 2Au + Na2Zn(CN)4

  • 使用電解法精鍊可以得到純度為99.999%的金。

[編輯] 「咬金測試」

用 咬一咬金去確定黃金的真偽已經有很久遠的歷史。雖然這方法並不專業,"咬金測試"應該可以在黃金上做記號,原因是金以摩氏硬度作準則是一種軟的金屬。越純 正的金越容易做記號。加上顏色的鉛可以欺騙此測試,因為鉛比金更軟。如果有足夠數量的鉛因為咬而被吸收的話,這樣亦會引起鉛中毒的危機,

[編輯] 元素符號由來

金的符號為Au,來自金的拉丁文名稱(Aurum)。而Aurum來自Aurora 一詞,是「燦爛的黎明」的意思。

[編輯] 煉金術

古代的煉金術士用太陽的符號代表金

主條目:煉金術

製 造金是煉金術主要目的之一,煉金術概念認為金可以由一種稱為賢者之石的神秘物質與如鉛等的其他物質進行相互作用來製造。雖然煉金術師們從未成功過,但是他 們的努力引起了人們對於物質本身能夠做些甚麼的興趣,而此正是現今化學的基礎。他們表示金的符號是圓中點(Circled dot)(☉),而這在天文學符號中、埃及象形文字及古代漢字均代表太陽。而現今人工金的製作方法,參見金合成(gold synthesis)。

引用出處:

http://zh.wikipedia.org/wiki/%E9%87%91

歡迎來到Bewise Inc.的世界,首先恭喜您來到這接受新的資訊讓產業更有競爭力,我們是提供專業刀具製造商,應對客戶高品質的刀具需求,我們可以協助客戶滿足您對產業的不同要求,我們有能力達到非常卓越的客戶需求品質,這是現有相關技術無法比擬的,我們成功的滿足了各行各業的要求,包括:精密HSS DIN切削刀具協助客戶設計刀具流程DIN or JIS 鎢鋼切削刀具設計NAS986 NAS965 NAS897 NAS937orNAS907 航太切削刀具,NAS航太刀具設計超高硬度的切削刀具醫療配件刀具設計複合式再研磨機PCD地板專用企口鑽石組合刀具粉末造粒成型機主機版專用頂級電桿SMD一体化粉末合金電感全自動無人化設備common mode電感全自動設備贴片共模电感全自動設備PCBN刀具PCD刀具單晶刀具PCD V-Cut捨棄式圓鋸片組粉末成型機航空機械鉸刀主機版專用頂級電汽車業刀具設計電子產業鑽石刀具木工產業鑽石刀具銑刀與切斷複合再研磨機銑刀與鑽頭複合再研磨機銑刀與螺絲攻複合再研磨機等等。我們的產品涵蓋了從民生刀具到工業級的刀具設計;從微細刀具到大型刀具;從小型生產到大型量產;全自動整合;我們的技術可提供您連續生產的效能,我們整體的服務及卓越的技術,恭迎您親自體驗!!

BW Bewise Inc. Willy Chen willy@tool-tool.com bw@tool-tool.com www.tool-tool.com skype:willy_chen_bw Head &Administration Office No.13,Shiang Shang 2nd St., West Chiu Taichung,Taiwan 40356 http://www.tool-tool.com / FAX:+886 4 2471 4839 N.Branch 5F,No.460,Fu Shin North Rd.,Taipei,Taiwan S.Branch No.24,Sec.1,Chia Pu East Rd.,Taipao City,Chiayi Hsien,Taiwan

Welcome to BW tool world! We are an experienced tool maker specialized in cutting tools. We focus on what you need and endeavor to research the best cutter to satisfy users demand. Our customers involve wide range of industries, like mold & die, aerospace, electronic, machinery, etc. We are professional expert in cutting field. We would like to solve every problem from you. Please feel free to contact us, its our pleasure to serve for you. BW product including: cutting toolaerospace tool .HSS DIN Cutting toolCarbide end millsCarbide cutting toolNAS Cutting toolNAS986 NAS965 NAS897 NAS937orNAS907 Cutting Tools,Carbide end milldisc milling cutter,Aerospace cutting toolhss drillФрезерыCarbide drillHigh speed steelCompound SharpenerMilling cutterINDUCTORS FOR PCD’CVDD(Chemical Vapor Deposition Diamond )’PCBN (Polycrystalline Cubic Boron Nitride) Core drillTapered end millsCVD Diamond Tools Inserts’PCD Edge-Beveling Cutter(Golden FingerPCD V-CutterPCD Wood toolsPCD Cutting toolsPCD Circular Saw BladePVDD End Millsdiamond tool. INDUCTORS FOR PCD . POWDER FORMING MACHINE Single Crystal Diamond Metric end millsMiniature end millscommon modeСпециальные режущие инструментыПустотелое сверло Pilot reamerFraisesFresas con mango PCD (Polycrystalline diamond) ‘FresePOWDER FORMING MACHINEElectronics cutterStep drillMetal cutting sawDouble margin drillGun barrelAngle milling cutterCarbide burrsCarbide tipped cutterChamfering toolIC card engraving cutterSide cutterStaple CutterPCD diamond cutter specialized in grooving floorsV-Cut PCD Circular Diamond Tipped Saw Blade with Indexable Insert PCD Diamond Tool Saw Blade with Indexable InsertNAS toolDIN or JIS toolSpecial toolMetal slitting sawsShell end millsSide and face milling cuttersSide chip clearance sawsLong end millsend mill grinderdrill grindersharpenerStub roughing end millsDovetail milling cuttersCarbide slot drillsCarbide torus cuttersAngel carbide end millsCarbide torus cuttersCarbide ball-nosed slot drillsMould cutterTool manufacturer.

SMD Automatic Mechanical’ Bewise Inc. www.tool-tool.com

ようこそBewise Inc.の世界へお越し下さいませ、先ず御目出度たいのは新たな

情報を受け取って頂き、もっと各産業に競争力プラス展開。

弊社は専門なエンドミルの製造メーカーで、客先に色んな分野のニーズ

豊富なパリエーションを満足させ、特にハイテク品質要求にサポート致します。

弊社は各領域に供給できる内容は:

(1)精密HSSエンドミルのR&D

(2)Carbide Cutting tools設計

(3)鎢鋼エンドミル設計

(4)航空エンドミル設計

(5)超高硬度エンドミル

(6)ダイヤモンドエンドミル

(7)医療用品エンドミル設計

(8)自動車部品&材料加工向けエンドミル設計

弊社の製品の供給調達機能は:

(1)生活産業~ハイテク工業までのエンドミル設計

(2)ミクロエンドミル~大型エンドミル供給

(3)小Lot生産~大量発注対応供給

(4)オートメーション整備調達

(5)スポット対応~流れ生産対応

弊社の全般供給体制及び技術自慢の総合専門製造メーカーに貴方のご体験を御待ちしております。

Bewise Inc. talaşlı imalat sanayinde en fazla kullanılan ve üç eksende (x,y,z) talaş kaldırabilen freze takımlarından olan Parmak Freze imalatçısıdır. Çok geniş ürün yelpazesine sahip olan firmanın başlıca ürünlerini Karbür Parmak Frezeler, Kalıpçı Frezeleri, Kaba Talaş Frezeleri, Konik Alın Frezeler, Köşe Radyüs Frezeler, İki Ağızlı Kısa ve Uzun Küresel Frezeler, İç Bükey Frezeler vb. şeklinde sıralayabiliriz.

BW специализируется в научных исследованиях и разработках, и снабжаем самым высокотехнологичным карбидовым материалом для поставки режущих / фрезеровочных инструментов для почвы, воздушного пространства и электронной индустрии. В нашу основную продукцию входит твердый карбид / быстрорежущая сталь, а также двигатели, микроэлектрические дрели, IC картонорезальные машины, фрезы для гравирования, режущие пилы, фрезеры-расширители, фрезеры-расширители с резцом, дрели, резаки форм для шлицевого вала / звездочки роликовой цепи, и специальные нано инструменты. Пожалуйста, посетите сайт www.tool-tool.com для получения большей информации.

BW is specialized in R&D and sourcing the most advanced carbide material with high-tech coating to supply cutting / milling tool for mould & die, aero space and electronic industry. Our main products include solid carbide / HSS end mills, micro electronic drill, IC card cutter, engraving cutter, shell end mills, cutting saw, reamer, thread reamer, leading drill, involute gear cutter for spur wheel, rack and worm milling cutter, thread milling cutter, form cutters for spline shaft/roller chain sprocket, and special tool, with nano grade. Please visit our web www.tool-tool.com for more info.