Silver (Ag)
transition-metalSolid
標準原子量
107.8682 u電子配置
[Kr] 5s1 4d10融点
961.78 °C沸点
2161.85 °C密度
1.0501e+4 kg/m³酸化数
−2, −1, 0, +1, +2, +3電気陰性度(Pauling)
1.93第1イオン化エネルギー
7.576234 eV発見年
データなし原子半径
160 pm詳細
Silver is a soft, dense transition metal in group 11, chemically related to copper and gold but more reactive than gold. It is the best elemental conductor of electricity and heat at ordinary temperatures and has exceptional optical reflectivity when freshly polished. In nature it occurs as native metal and in sulfide, sulfosalt, chloride, and telluride minerals, commonly associated with lead, zinc, copper, and gold ores.
Pure silver has a brilliant white metallic luster. It is a little harder than gold and is very ductile and malleable, being exceeded only by gold and perhaps palladium. Pure silver has the highest electrical and thermal conductivity of all metals, and possesses the lowest contact resistance. It is stable in pure air and water, but tarnishes when exposed to ozone, hydrogen sulfide, or air containing sulfur. The alloys of silver are important.
The name derives from the Anglo-Saxon seofor and siolfur, which is of unknown origin. The symbol Ag derives from the Latin argentum and Sanskrit argunas from "bright". Silver was known in prehistoric times.
Archaeological evidence suggests that people have been using silver for at least 5000 years. Silver can be obtained from pure deposits, from silver ores such as argentite (Ag2S) and horn silver (AgCl), and in conjunction with deposits of ores containing lead, gold or copper.
The Latin word for silver is argentum. Silver has been known since ancient times. It is mentioned in Genesis. Slag dumps in Asia Minor and on islands in the Aegean Sea indicate that man learned to separate silver from lead as early as 3000 B.C.
Pure silver is a bright white, highly lustrous metal with a clean metallic sheen. It is malleable and ductile, and it takes a very high polish. In air it does not oxidize rapidly, but exposed surfaces darken by tarnishing, mainly through reaction with sulfur compounds.
Silver is used in electrical contacts, conductive pastes, solders, brazing alloys, and high-reliability connectors because of its conductivity and workability. It remains important in jewelry, tableware, coinage, and decorative objects, usually as alloys to improve hardness. Silver mirrors and coatings serve optical applications. Silver halides were central to photographic film and paper, though that use has declined. Silver compounds and silver-containing surfaces are also used where controlled antimicrobial action is desired.
Silver and silver compounds have many uses. Pure silver is the best conductor of heat and electricity of all known metals, so it is sometimes used in making solder, electrical contacts and printed circuit boards. Silver is also the best reflector of visible light known, but silver mirrors must be given a protective coating to prevent them from tarnishing. Silver has also been used to create coins, although today other metals are typically used in its place. Sterling silver, an alloy containing 92.5% silver, is used to make silverware, jewelry and other decorative items. High capacity batteries can be made with silver and zinc and silver and cadmium. Silver nitrate (AgNO3) is light sensitive and is used to make photographic films and papers. Silver iodide (AgI) is used to seed clouds to produce rain.
Sterling silver is used for jewelry, silverware, etc. where appearance is paramount. This alloy contains 92.5% silver, the remainder being copper or some other metal. Silver is of the utmost importance in photography, about 30% of the U.S. industrial consumption going into this application. It is used for dental alloys. Silver is used in making solder and brazing alloys, electrical contacts, and high capacity silver-zinc and silver-cadmium batteries. Silver paints are used for making printed circuits. It is used in mirror production and may be deposited on glass or metals by chemical deposition, electrode position, or by evaporation. When freshly deposited, it is the best reflector of visible light known, but is rapidly tarnished and loses much of its reflectance. It is a poor reflector of ultraviolet. Silver fulminate, a powerful explosive, is sometimes formed during the silvering process. Silver iodide is used in seeding clouds to produce rain. Silver chloride has interesting optical properties as it can be made transparent; it also is a cement for glass. Silver nitrate, or lunar caustic, the most important silver compound, is used extensively in photography. Silver for centuries has been used traditionally for coinage by many countries of the world. In recent times, however, consumption of silver has greatly exceeded the output.
Isotopes in Earth/Planetary Science
The measurement of relative amounts of 107Ag and 109Ag is used to study the processes responsible for the isotopic fractionation of silver isotopes in ore deposits, which depends on the specific minerals and environmental conditions. This is currently an area of active research and it is thought that the relative amounts of the isotopes of silver are altered during the formation of the ore [351] Y. Luo, E. Dabek-Zlotorzynska, V. Celo, D. C. Muir, L. Yang. Anal. Chem.82, 3922 (2010)., [352] A. V. Chugaev, I. V. Chernyshev. Geochim. Cosmochim. Acta Suppl.73, A225 (2009)..
Isotopes in Forensic Science and Anthropology
Silver isotope-amount ratiosn(107Ag)/n(109Ag) along with isotope-amount ratios of copper n(65Cu)/n(63Cu), and isotope-amount ratios of lead (n(206Pb)/n(204Pb), n(207Pb)/n(204Pb) and n(208Pb)/n(204Pb)) have been used to determine origins of European coins and information on the flow of goods in the world market over time (Fig. IUPAC.47.1). Metals from Peru and Mexico and those from European mining have distinct isotopic signatures that enable the origin of the metal to be determined by examining the isotopic compositions of silver, copper, and lead in the coins. Abundant silver sources, mined in Mexico and Peru in the 16 th century, were used to mint coins, but they were not a major influence in the European coin market until the 18 th century (Fig. IUPAC.47.1) [237] A. M. Desaulty, P. Telouk, E. Albalat, F. Albarede. Proc. Natl. Acad. Sci.108, 9002 (2011)..
Isotopes in Geochronology
The amount ratio n(107Pd)/n(107Ag) is used in geochronology to date major events in the Solar System [344] W. R. Kelly, G. J. Wasserburg. Geophys. Res. Lett.5 1079 (1978)., [345] G. J. Wasserburg, D. A. Papanastassiou. Some Short-Lived Nuclides in the Early Solar-System – A Connection with the Placental ISM, in Essays in Nuclear Astrophysics, C. A. Barnes, D. D. Clayton, and D. N. Schramm. Cambridge University Press, Cambridge, UK (1982)., [346] J. H. Chen, G. J. Wasserburg. Live 107Pd in the Early Solar System and Implications on Planetary Evolution, in Earth Processes: Reading the Isotopic Code, Geophysical Monograph 95, A. Basu and S. Hart. Amer. Geophys. U., Washington (1996)., [347] J. H. Chen, G. J. Wasserburg. Geochim. Cosmochim. Acta54, 1729 (1990)., [348] A. P. Dicken. Radiogenic Isotope Geology, Cambridge University Press, New York (1995)., [353] G. J. Wasserburg. “Short-lived nuclei in the early solar-system”, in Protostars and Planets, D. C. Black, M. S. Matthews (Eds.), Univ. Arizona Press, Tucson, Arizona, USA (1985).. Although 107Ag is naturally occurring, it is also the daughter product by beta decay of 107Pd. If both excess 107Ag and 107Pd are present in a sample of extraterrestrial origin, then the material would have formed sometime after 107Pd decayed (i.e. sometime after the 6.5-million-year half-life of 107Pd). The n(107Pd)/n(107Ag) amount ratio can be measured to help determine when the 107Pd decay process began and determine how much time has elapsed since the material was formed.
Isotopes in Industry
107Ag is being studied as a possible target for cyclotron production of 103Pd (with a half-life of 17 days) via the 107Ag (p, α n) 103Pd reaction. 103Pd releases X-rays and Auger electrons at the rate of about 80 X-rays and 186 Auger electrons per 100 decays of 103Pd, which makes this isotope an ideal candidate for internal radiotherapy for the treatment of cancers. The production of this isotope in a no-carrier form (not formed in another solution) is important for its medical uses. By using neutrons, photons, and charged particles to force reactions with isotopes of a higher mass number than 103, 103Pd will occur in a fraction of those reactions. The most common methods of 103Pd production use targets of rhodium or other isotopes of palladium. However, 107Ag has also been studied as a feasible option [349] M. Hussain, S. Sudar, M. N. Aslam, H. A. Shah, R. Ahmad, A. A. Malik, S. M. Qaim. Appl. Radiat. Isot.67, 1842 (2009)., [354] F. G. Perey. Phys. Rev. Lett.131, 745 (1963).. 109Ag is used to produce the gamma reference source 110mAg to help calibrate gamma detectors [349] M. Hussain, S. Sudar, M. N. Aslam, H. A. Shah, R. Ahmad, A. A. Malik, S. M. Qaim. Appl. Radiat. Isot.67, 1842 (2009)., [354] F. G. Perey. Phys. Rev. Lett.131, 745 (1963)..
Silver chemistry is dominated by the +1 oxidation state, with Ag⁺ forming many salts and coordination complexes. Silver nitrate (AgNO₃) is a common soluble reagent and precursor for other silver compounds. Silver chloride (AgCl), silver bromide (AgBr), and silver iodide (AgI) are sparingly soluble, light-sensitive halides that underpinned traditional photography. Silver sulfide (Ag₂S) is the principal tarnish product and an important natural mineral. Higher oxidation states such as +2 and +3 exist in specialized compounds, usually with strong oxidizing ligands or solid-state structures.
See more information at the Silver compound page.
Massive metallic silver has low acute toxicity, but dusts, soluble salts, and fine particles require careful handling. Chronic intake of bioavailable silver compounds can cause argyria, a persistent gray-blue discoloration of skin and other tissues. Silver nitrate (AgNO₃) is corrosive and stains skin and organic materials. Some silver compounds are toxic to aquatic organisms. Molten silver presents ordinary burn and metal-fume hazards in foundry or refining work.
While silver itself is not considered to be toxic, most of its salts are poisonous. Exposure to silver (metal and soluble compounds, as Ag) in air should not exceed 0.01 mg/m3, (8-hour time-weighted average - 40 hour week). Silver compounds can be absorbed in the circulatory system and reduced silver deposited in the various tissues of the body. A condition, known as argyria, results with a grayish pigmentation of the skin and mucous membranes. Silver has germicidal effects and kills many lower organisms effectively without harm to higher animals.
Silver is a trace element in soils, sediments, natural waters, and living organisms, with no established essential biological role in humans. In the environment Ag⁺ is strongly complexed or immobilized by sulfide, chloride, organic matter, and mineral surfaces. Mining, smelting, photography wastes, electronics, and some antimicrobial products can add silver to waste streams. In anoxic sediments, formation of silver sulfide (Ag₂S) greatly reduces mobility and bioavailability.
Silver is produced both from primary silver mines and, very often, as a by-product of lead, zinc, copper, and gold mining. Supply therefore depends partly on the economics of other base and precious metals. Demand is split among industrial uses, jewelry and silverware, investment products, and smaller specialty applications. Recycling is important from photographic materials, jewelry, electronics, and industrial scrap, but recovery is uneven when silver is widely dispersed in small devices or coatings. Its price is volatile because it is both an industrial metal and a precious metal.
Silver occurs natively and in ores such as argentite (Ag2S) and horn silver (AgCl); lead, lead-zinc, copper, gold, and copper-nickel ores are principal sources. Mexico, Canada, Peru, and the U.S. are the principal silver producers in the western hemisphere.
Silver is far less abundant cosmically than lighter metals such as iron or magnesium. Its stable isotopes, ¹⁰⁷Ag and ¹⁰⁹Ag, are made mainly by neutron-capture processes in earlier generations of stars, including slow and rapid neutron-capture pathways. In planetary materials it behaves as a chalcophile and moderately siderophile element, concentrating in sulfide phases and metallic portions more than in silicate minerals.
- Silver has the highest electrical conductivity of any element.
- Sterling silver is usually 92.5% silver, with copper as the main hardening metal.
- Fresh silver mirrors reflect visible light very well but tarnish in sulfur-rich air.
- Silver halides darken because light can reduce Ag⁺ to metallic silver.
- Most mined silver is not obtained from mines worked only for silver.
- Native silver can form wires, plates, and dendritic crystals in some deposits.
画像
性質
物理的性質
- 原子半径(経験値)
- 160 pm 全元素の原子半径(経験値)を比較 →
- 共有結合半径
- 145 pm 全元素の共有結合半径を比較 →
- ファンデルワールス半径
- 172 pm 全元素のファンデルワールス半径を比較 →
- 金属半径
- 134 pm 全元素の金属半径を比較 →
- 密度
- 1.0501 × 104 kg/m³ 全元素の密度を比較 →
- モル体積
- 0.0103 L/mol
- 標準温度・圧力(STP)での相
- 固体 全元素の標準温度・圧力(STP)での相を比較 →
- 融点
- 961.78 °C 全元素の融点を比較 →
- 沸点
- 2161.85 °C 全元素の沸点を比較 →
- 熱伝導率
- 429 W/(m·K) 全元素の熱伝導率を比較 →
- 比熱容量
- 0.235 J/(g·K) 全元素の比熱容量を比較 →
- モル熱容量
- 25.35 J/(mol·K) 全元素のモル熱容量を比較 →
- 結晶構造
- 面心立方構造 全元素の結晶構造を比較 →
化学的性質
- 電気陰性度(Pauling)
- 1.93 全元素の電気陰性度(Pauling)を比較 →
- 電気陰性度(Allen)
- 1.87
- 電子親和力
- 1.302 eV
- 第1イオン化エネルギー
- 7.576234 eV 全元素の第1イオン化エネルギーを比較 →
- 第2イオン化エネルギー
- 21.484474 eV 全元素の第2イオン化エネルギーを比較 →
- 第3イオン化エネルギー
- 34.80012 eV 全元素の第3イオン化エネルギーを比較 →
- 第4イオン化エネルギー
- 49.000169 eV 全元素の第4イオン化エネルギーを比較 →
- 第5イオン化エネルギー
- 65.000224 eV 全元素の第5イオン化エネルギーを比較 →
- 酸化数
- −2, −1, 0, +1, +2, +3 全元素の酸化数を比較 →
- 価電子
- 11 全元素の価電子を比較 →
- 電子配置
- [Kr] 5s1 4d10
熱力学的性質
- 臨界点(温度)
- 6137 °C
- 融解熱
- 0.11690936 eV 全元素の融解熱を比較 →
- 蒸発熱
- 2.597295 eV 全元素の蒸発熱を比較 →
- 昇華熱
- 2.952791 eV
- 原子化熱
- 2.952791 eV
- 原子化エンタルピー
- 2.952791 eV
原子核
- 陽子数
- 47 全元素の陽子数を比較 →
- 中性子数
- 60 全元素の中性子数を比較 →
- 既知の同位体
- 42 全元素の既知の同位体を比較 →
- 安定同位体
- 2 全元素の安定同位体を比較 →
- 最も安定な同位体
- Ag-107
存在度
- 存在度(地殻)
- 0.075 mg/kg 全元素の存在度(地殻)を比較 →
- 存在度(海洋)
- 4 × 10−5 mg/L 全元素の存在度(海洋)を比較 →
結晶構造
- 格子定数a
- 409 pm
電子構造
- 各電子殻の電子数
- 2, 8, 18, 18, 1 全元素の各電子殻の電子数を比較 →
識別子
- CAS登録番号
- 7440-22-4 全元素のCAS登録番号を比較 →
- 項記号
- 2S1/2
- InChI
- InChI=1S/Ag
- InChI Key
- BQCADISMDOOEFD-UHFFFAOYSA-N
電子配置 測定値
Ag: 4d¹⁰ 5s¹[Kr] 4d¹⁰ 5s¹1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹⁰ 5s¹原子モデル
同位体によって中性子数、質量、安定性は変わりますが、中性原子の電子配置は変わりません。
模式的な原子モデルです。実際の縮尺とは異なります。
原子の指紋
発光/吸収スペクトル
同位体分布
| 質量数 | 原子質量(u) | 天然存在比 | 半減期 |
|---|---|---|---|
| 107 安定 | 106.9050916 ± 0.0000026 | 51.8390% | 安定 |
| 109 安定 | 108.9047553 ± 0.0000014 | 48.1610% | 安定 |
相/状態
理由: 融点(961.78 °C)より936.8 °C低い
模式図、実際の縮尺とは異なります
相転移点
相転移エネルギー
融点で1 molを融解させるのに必要なエネルギー
沸点で1 molを蒸発させるのに必要なエネルギー
昇華点で1 molを昇華させるのに必要なエネルギー
密度
標準条件下
標準条件下
詳細
原子スペクトル
全47件中10件を表示しています。 イオンの電荷の昇順で並べています。
スペクトル線データの収録状況 ?
| イオン | 電荷 | スペクトル線の総数 | 遷移確率 | 準位の表記 |
|---|---|---|---|---|
| Ag I | 0 | 103 | 7 | 97 |
| Ag II | +1 | 455 | 237 | 455 |
| Ag III | +2 | 140 | 0 | 0 |
準位データの収録状況 ?
| イオン | 電荷 | 準位 |
|---|---|---|
| Ag I | 0 | 107 |
| Ag II | +1 | 100 |
| Ag III | +2 | 64 |
| Ag IV | +3 | 2 |
| Ag V | +4 | 2 |
| Ag VI | +5 | 2 |
| Ag VII | +6 | 2 |
| Ag VIII | +7 | 2 |
| Ag IX | +8 | 2 |
| Ag X | +9 | 2 |
イオン半径
全11件中10件を表示しています。
| 電荷 | 配位 | スピン | 半径 |
|---|---|---|---|
| +1 | 2 | データなし | 67 pm |
| +1 | 4 | データなし | 100 pm |
| +1 | 4 | データなし | 102 pm |
| +1 | 5 | データなし | 109.00000000000001 pm |
| +1 | 6 | データなし | 114.99999999999999 pm |
| +1 | 7 | データなし | 122 pm |
| +1 | 8 | データなし | 128 pm |
| +2 | 4 | データなし | 79 pm |
| +2 | 6 | データなし | 94 pm |
| +3 | 4 | データなし | 67 pm |
化合物
同位体 (2)
| 質量数 | 原子質量(u) | 天然存在比 | 半減期 | 崩壊形式 | |
|---|---|---|---|---|---|
| 107 安定 | 106.9050916 ± 0.0000026 | 51.8390% ± 0.0080% | 安定 | stable | |
| 109 安定 | 108.9047553 ± 0.0000014 | 48.1610% ± 0.0080% | 安定 | stable |
スペクトル線
全125件中50件を表示しています。 初期設定では、強度の測定値があるスペクトル線のみを表示します。
| 波長(nm) | 強度 | 電離段階 | 種類 | 遷移 | 精度 | 出典 | |
|---|---|---|---|---|---|---|---|
| 562.2482 nm | 21000 | Ag II | emission | 4d9.(2D<5/2>).5d 2[7/2] → 4d9.(2D<5/2>).4f 2[9/2]* | 測定値 | NIST | |
| 540.01037 nm | 20000 | Ag II | emission | 4d9.(2D<5/2>).5d 2[9/2] → 4d9.(2D<5/2>).4f 2[11/2]* | 測定値 | NIST | |
| 540.31323 nm | 15000 | Ag II | emission | 4d9.(2D<5/2>).5d 2[9/2] → 4d9.(2D<5/2>).4f 2[11/2]* | 測定値 | NIST | |
| 555.19264 nm | 12000 | Ag II | emission | 4d9.(2D<5/2>).5d 2[7/2] → 4d9.(2D<5/2>).4f 2[9/2]* | 測定値 | NIST | |
| 548.81562 nm | 8300 | Ag II | emission | 4d9.(2D<5/2>).5d 2[5/2] → 4d9.(2D<5/2>).4f 2[7/2]* | 測定値 | NIST | |
| 558.97829 nm | 4200 | Ag II | emission | 4d9.(2D<5/2>).5d 2[5/2] → 4d9.(2D<5/2>).4f 2[7/2]* | 測定値 | NIST | |
| 534.00267 nm | 2900 | Ag II | emission | 4d9.(2D<5/2>).5d 2[9/2] → 4d9.(2D<5/2>).4f 2[9/2]* | 測定値 | NIST | |
| 554.32121 nm | 2700 | Ag II | emission | 4d9.(2D<5/2>).5d 2[5/2] → 4d8.(3F).5s.5p.(3P*) 1F* | 測定値 | NIST | |
| 557.96782 nm | 2400 | Ag II | emission | 4d9.(2D<5/2>).5d 2[7/2] → 4d9.(2D<5/2>).4f 2[7/2]* | 測定値 | NIST | |
| 549.38302 nm | 2300 | Ag II | emission | 4d9.(2D<5/2>).5d 2[5/2] → 4d9.(2D<5/2>).4f 2[7/2]* | 測定値 | NIST | |
| 555.81412 nm | 2300 | Ag II | emission | 4d9.(2D<5/2>).5d 2[5/2] → 4d9.(2D<5/2>).4f 2[3/2]* | 測定値 | NIST | |
| 557.38257 nm | 2300 | Ag II | emission | 4d9.(2D<5/2>).5d 2[7/2] → 4d9.(2D<5/2>).4f 2[7/2]* | 測定値 | NIST | |
| 542.40509 nm | 2200 | Ag II | emission | 4d9.(2D<5/2>).5d 2[3/2] → 4d9.(2D<5/2>).4f 2[3/2]* | 測定値 | NIST | |
| 541.08117 nm | 1800 | Ag II | emission | 4d9.(2D<5/2>).5d 2[3/2] → 4d9.(2D<5/2>).4f 2[3/2]* | 測定値 | NIST | |
| 514.28157 nm | 1700 | Ag II | emission | 4d9.(2D<5/2>).5d 2[1/2] → 4d9.(2D<5/2>).4f 2[1/2]* | 測定値 | NIST | |
| 558.84183 nm | 1700 | Ag II | emission | 4d9.(2D<5/2>).5d 2[7/2] → 4d9.(2D<5/2>).4f 2[9/2]* | 測定値 | NIST | |
| 536.27883 nm | 1600 | Ag II | emission | 4d9.(2D<5/2>).5d 2[3/2] → 4d9.(2D<5/2>).4f 2[7/2]* | 測定値 | NIST | |
| 539.24682 nm | 1500 | Ag II | emission | 4d9.(2D<5/2>).5d 2[3/2] → 4d9.(2D<5/2>).4f 2[5/2]* | 測定値 | NIST | |
| 547.86589 nm | 1500 | Ag II | emission | 4d9.(2D<5/2>).5d 2[3/2] → 4d9.(2D<5/2>).4f 2[1/2]* | 測定値 | NIST | |
| 533.25049 nm | 1300 | Ag II | emission | 4d9.(2D<5/2>).5d 2[9/2] → 4d9.(2D<5/2>).4f 2[7/2]* | 測定値 | NIST | |
| 531.24574 nm | 1200 | Ag II | emission | 4d9.(2D<5/2>).5d 2[9/2] → 4d9.(2D<5/2>).4f 2[9/2]* | 測定値 | NIST | |
| 520.9078 nm | 1000 | Ag I | emission | 4d10.5p 2P* → 4d10.5d 2D | 測定値 | NIST | |
| 546.54853 nm | 1000 | Ag I | emission | 4d10.5p 2P* → 4d10.5d 2D | 測定値 | NIST | |
| 441.196 nm | 830 | Ag II | emission | 4d9.(2D<5/2>).6p 2[7/2]* → 4d9.(2D<5/2>).8s 2[5/2] | 測定値 | NIST | |
| 541.19338 nm | 740 | Ag II | emission | 4d9.(2D<5/2>).5d 2[3/2] → 4d9.(2D<5/2>).4f 2[3/2]* | 測定値 | NIST | |
| 513.72469 nm | 720 | Ag II | emission | 4d9.(2D<5/2>).5d 2[1/2] → 4d8.(3F).5s.5p.(3P*) 1D* | 測定値 | NIST | |
| 421.09542 nm | 700 | Ag I | emission | 4d10.5p 2P* → 4d10.6d 2D | 測定値 | NIST | |
| 431.959 nm | 630 | Ag II | emission | 4d9.(2D<5/2>).6p 2[7/2]* → 4d9.(2D<5/2>).8s 2[5/2] | 測定値 | NIST | |
| 443.063 nm | 580 | Ag II | emission | 4d9.(2D<3/2>).6p 2[5/2]* → 4d9.(2D<3/2>).8s 2[3/2] | 測定値 | NIST | |
| 408.59155 nm | 470 | Ag II | emission | 4d9.(2D<3/2>).5p 2[5/2]* → 4d8.5s2 1G | 測定値 | NIST | |
| 449.492 nm | 410 | Ag II | emission | 4d9.(2D<5/2>).6p 2[5/2]* → 4d9.(2D<5/2>).8s 2[5/2] | 測定値 | NIST | |
| 453.041 nm | 410 | Ag II | emission | 4d9.(2D<5/2>).6p 2[5/2]* → 4d9.(2D<5/2>).8s 2[5/2] | 測定値 | NIST | |
| 405.5475 nm | 400 | Ag I | emission | 4d10.5p 2P* → 4d10.6d 2D | 測定値 | NIST | |
| 431.354 nm | 290 | Ag II | emission | 4d9.(2D<3/2>).6p 2[5/2]* → 4d9.(2D<3/2>).8s 2[3/2] | 測定値 | NIST | |
| 436.409 nm | 290 | Ag II | emission | 4d9.(2D<3/2>).6p 2[1/2]* → 4d9.(2D<3/2>).8s 2[3/2] | 測定値 | NIST | |
| 444.917 nm | 290 | Ag II | emission | 4d9.(2D<3/2>).6p 2[3/2]* → 4d9.(2D<3/2>).8s 2[3/2] | 測定値 | NIST | |
| 478.83966 nm | 260 | Ag II | emission | 4d9.(2D<3/2>).5p 2[3/2]* → 4d8.5s2 1D | 測定値 | NIST | |
| 418.547499 nm | 250 | Ag II | emission | 4d9.(2D<3/2>).5p 2[5/2]* → 4d8.5s2 1D | 測定値 | NIST | |
| 723.9381 nm | 250 | Ag II | emission | 4d9.(2D<5/2>).6s 2[5/2] → 4d8.(3F).5s.5p.(3P*) 5G* | 測定値 | NIST | |
| 398.51904 nm | 220 | Ag II | emission | 4d9.(2D<5/2>).5p 2[3/2]* → 4d8.5s2 3P | 測定値 | NIST | |
| 433.316 nm | 210 | Ag II | emission | 4d9.(2D<5/2>).6p 2[7/2]* → 4d9.(2D<5/2>).8s 2[5/2] | 測定値 | NIST | |
| 447.909 nm | 210 | Ag II | emission | 4d9.(2D<5/2>).6p 2[3/2]* → 4d9.(2D<5/2>).8s 2[5/2] | 測定値 | NIST | |
| 451.558 nm | 210 | Ag II | emission | 4d9.(2D<5/2>).6p 2[5/2]* → 4d9.(2D<5/2>).8s 2[5/2] | 測定値 | NIST | |
| 381.09396 nm | 200 | Ag I | emission | 4d10.5p 2P* → 4d10.7d 2D | 測定値 | NIST | |
| 699.906 nm | 200 | Ag II | emission | 4d8.(3F).5s.5p.(3P*) 5D* → 4d9.(2D<3/2>).7s 2[3/2] | 測定値 | NIST | |
| 392.01238 nm | 180 | Ag II | emission | 4d9.(2D<5/2>).5p 2[3/2]* → 4d8.5s2 3P | 測定値 | NIST | |
| 462.00355 nm | 170 | Ag II | emission | 4d9.(2D<3/2>).5p 2[5/2]* → 4d8.5s2 1D | 測定値 | NIST | |
| 394.9435 nm | 160 | Ag II | emission | 4d9.(2D<5/2>).5p 2[3/2]* → 4d8.5s2 3P | 測定値 | NIST | |
| 502.73432 nm | 160 | Ag II | emission | 4d9.(2D<3/2>).5p 2[3/2]* → 4d8.5s2 1D | 測定値 | NIST | |
| 390.930327 nm | 140 | Ag II | emission | 4d9.(2D<5/2>).5p 2[5/2]* → 4d8.5s2 1D | 測定値 | NIST |
詳細な性質
共有結合半径(詳細)
- 共有結合半径(Pyykkö)
- 128 pm
- 共有結合半径(Pyykkö、二重結合)
- 139 pm
- 共有結合半径(Pyykkö、三重結合)
- 137 pm
- 共有結合半径(Bragg)
- 177 pm
ファンデルワールス半径
- Batsanov
- 210 pm
- Alvarez
- 253 pm
- UFF
- 314.8 pm
- MM3
- 243 pm
原子半径と金属半径
- 原子半径(Rahm)
- 225 pm
- 金属半径(C12)
- 144 pm
番号付けの尺度
- Mendeleev
- 72
- Pettifor
- 71
- Glawe
- 67
電気陰性度の尺度
- Ghosh
- 0
- Miedema
- 4
- Gunnarsson–Lundqvist
- 4
- Robles–Bartolotti
- 3
分極率と分散
- 双極子分極率
- 55 a.u.
- 双極子分極率(不確かさ)
- 8 a.u.
- C₆ (Gould–Bučko)
- 341 Ha·Bohr6
ミーデマパラメータ
- ミーデマモル体積
- 10.25 cm3/mol
- ミーデマ電子密度
- 3
供給リスクと経済性
- 生産集中度
- 19
- 相対供給リスク
- 6
- 埋蔵量の分布
- 23
- 政治的安定性(最大生産国)
- 23
- 政治的安定性(最大埋蔵国)
- 20
相転移と同素体
| 融点 | 1234.93 K |
| 沸点 | 2435.15 K |
| 臨界点(温度) | 6410.15 K |
酸化数の分類
専門参考データ
遮蔽定数 (10)
| n | 軌道 | σ |
|---|---|---|
| 1 | s | 0.9577 |
| 2 | p | 4.0806 |
| 2 | s | 12.3658 |
| 3 | d | 14.4602 |
| 3 | p | 17.1914 |
| 3 | s | 16.9688 |
| 4 | d | 32.2372 |
| 4 | p | 28.4376 |
| 4 | s | 27.1352 |
| 5 | s | 40.2445 |
結晶半径の詳細 (11)
| 電荷 | CN | スピン | rcrystal (pm) | 由来 |
|---|---|---|---|---|
| 1 | II | 81 | ||
| 1 | IV | 114 | calculated, | |
| 1 | IVSQ | 116 | ||
| 1 | V | 123 | calculated, | |
| 1 | VI | 129 | calculated, | |
| 1 | VII | 136 | ||
| 1 | VIII | 142 | ||
| 2 | IVSQ | 93 | ||
| 2 | VI | 108 | ||
| 3 | IVSQ | 81 |
同位体の崩壊形式 (68)
| 同位体 | モード | 強度 |
|---|---|---|
| 92 | B+ | — |
| 92 | p | — |
| 93 | p | — |
| 93 | B+ | — |
| 93 | B+p | — |
| 94 | B+ | 100% |
| 94 | B+p | 0.2% |
| 95 | B+ | 100% |
| 95 | B+p | 2.3% |
| 96 | B+ | 100% |
X線散乱因子 (508)
| エネルギー (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 1.18566 |
| 10.1617 | — | 1.22941 |
| 10.3261 | — | 1.27478 |
| 10.4931 | — | 1.32182 |
| 10.6628 | — | 1.38215 |
| 10.8353 | — | 1.45541 |
| 11.0106 | — | 1.53256 |
| 11.1886 | — | 1.61379 |
| 11.3696 | — | 1.69933 |
| 11.5535 | — | 1.78755 |
追加データ
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
7.5×10-2 milligrams per kilogram
参考文献 (1)
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
4×10-5 milligrams per liter
参考文献 (1)
Sources
Sources of this element.
Silver occurs natively and in ores such as argentite (Ag2S) and horn silver (AgCl); lead, lead-zinc, copper, gold, and copper-nickel ores are principal sources. Mexico, Canada, Peru, and the U.S. are the principal silver producers in the western hemisphere.
参考文献 (1)
- [6] Silver https://periodic.lanl.gov/47.shtml
Production
Production of this element (from raw materials or other compounds containing the element).
Silver is also recovered during electrolytic refining of copper. Commercial fine silver contains at least 99.9% silver. Purities of 99.999+% are available commercially.
参考文献 (1)
- [6] Silver https://periodic.lanl.gov/47.shtml
Isotopes in Forensic Science and Anthropology
Information on the use of this element's isotopes in forensic science and anthropology.
Silver isotope-amount ratiosn(107Ag)/n(109Ag) along with isotope-amount ratios of copper n(65Cu)/n(63Cu), and isotope-amount ratios of lead (n(206Pb)/n(204Pb), n(207Pb)/n(204Pb) and n(208Pb)/n(204Pb)) have been used to determine origins of European coins and information on the flow of goods in the world market over time (Fig. IUPAC.47.1). Metals from Peru and Mexico and those from European mining have distinct isotopic signatures that enable the origin of the metal to be determined by examining the isotopic compositions of silver, copper, and lead in the coins. Abundant silver sources, mined in Mexico and Peru in the 16 th century, were used to mint coins, but they were not a major influence in the European coin market until the 18 th century (Fig. IUPAC.47.1) [237] A. M. Desaulty, P. Telouk, E. Albalat, F. Albarede. Proc. Natl. Acad. Sci.108, 9002 (2011)..
参考文献 (2)
- [237] A. M. Desaulty, P. Telouk, E. Albalat, F. Albarede. Proc. Natl. Acad. Sci.108, 9002 (2011).
- [4] IUPAC Periodic Table of the Elements and Isotopes (IPTEI) https://doi.org/10.1515/pac-2015-0703
参考文献
(9)
Data deposited in or computed by PubChem
The half-life and atomic mass data was provided by the Atomic Mass Data Center at the International Atomic Energy Agency.
Element data are cited from the Atomic weights of the elements (an IUPAC Technical Report). The IUPAC periodic table of elements can be found at https://iupac.org/what-we-do/periodic-table-of-elements/. Additional information can be found within IUPAC publication doi:10.1515/pac-2015-0703 Copyright © 2020 International Union of Pure and Applied Chemistry.
The information are cited from Pure Appl. Chem. 2018; 90(12): 1833-2092, https://doi.org/10.1515/pac-2015-0703.
Thomas Jefferson National Accelerator Facility (Jefferson Lab) is one of 17 national laboratories funded by the U.S. Department of Energy. The lab's primary mission is to conduct basic research of the atom's nucleus using the lab's unique particle accelerator, known as the Continuous Electron Beam Accelerator Facility (CEBAF). For more information visit https://www.jlab.org/
The periodic table at the LANL (Los Alamos National Laboratory) contains basic element information together with the history, source, properties, use, handling and more. The provenance data may be found from the link under the source name.
The periodic table contains NIST's critically-evaluated data on atomic properties of the elements. The provenance data that include data for atomic spectroscopy, X-ray and gamma ray, radiation dosimetry, nuclear physics, and condensed matter physics may be found from the link under the source name. Ref: https://www.nist.gov/pml/atomic-spectra-database
This section provides all form of data related to element Silver.
The element property data was retrieved from publications.

