Gold (Au)
transition-metalSolid
Nguyên tử khối chuẩn
196,966569 uCấu hình electron
[Xe] 6s1 4f14 5d10Nhiệt độ nóng chảy
1064,18 °CNhiệt độ sôi
2855,85 °CKhối lượng riêng
1,9282e+4 kg/m³Trạng thái oxi hóa
−3, −2, −1, 0, +1, +2, +3, +5Độ âm điện (Pauling)
2,54Năng lượng ion hóa (lần 1)
9,225554 eVNăm phát hiện
Không cóBán kính nguyên tử
135 pmChi tiết
Gold is a dense, soft transition metal with exceptional resistance to oxidation and corrosion. It is usually found native or alloyed with silver and other precious metals, rather than as common simple ores. Its chemistry is dominated by relativistic effects, which help give the metal its yellow color and influence stable oxidation states. Gold combines high electrical conductivity, malleability, chemical nobility, and cultural value in a way unmatched by most elements.
It is estimated that all the gold in the world, so far refined, could be placed in a single cube 60 ft. on a side. Of all the elements, gold in its pure state is undoubtedly the most beautiful. It is metallic, having a yellow color when in a mass, but when finely divided it may be black, ruby, or purple. The Purple of Cassius is a delicate test for auric gold. It is the most malleable and ductile metal; 1 oz. of gold can be beaten out to 300 ft2. It is a soft metal and is usually alloyed to give it more strength. It is a good conductor of heat and electricity, and is unaffected by air and most reagents.
The name derives from the Sanskrit jval for "shine", the Teutonic word gulth for "shining metal", and the Anglo-Saxon gold of unknown origin. The symbol Au derives from the Latin aurum, for Aurora, the goddess of dawn. Gold was known and highly valued in prehistoric times.
An attractive and highly valued metal, gold has been known for at least 5500 years. Gold is sometimes found free in nature but it is usually found in conjunction with silver, quartz (SiO2), calcite (CaCO3), lead, tellurium, zinc or copper. There is roughly 1 milligram of gold dissolved in every ton of seawater, although extracting it currently costs more than the gold is worth. It has been estimated that all of the gold that has currently been refined could be placed in a cube measuring 20 meters on a side.
Known and highly valued from earliest times, gold is found in nature as the free metal and in tellurides; it is very widely distributed and is almost always associated with quartz or pyrite.
Pure gold is a bright metallic yellow solid at ordinary conditions. It is very malleable and ductile, and freshly exposed surfaces keep their luster in air. Finely divided gold can appear red, purple, or blue because small particles interact with light differently from bulk metal.
Gold is used in jewelry, coinage, bullion, and decorative gilding, often alloyed to improve hardness. In electronics it is valued for corrosion-resistant contacts, bond wires, connectors, and thin coatings. Dentistry has used gold alloys where durability and biocompatibility are important, though use has declined in some settings. Gold nanoparticles are used in diagnostic tests, research reagents, and specialized optical materials. Radioactive ¹⁹⁸Au has had limited medical and tracer applications.
Gold is the most malleable and ductile of all known metals. A single ounce of gold can be beaten into a sheet measuring roughly 5 meters on a side. Thin sheets of gold, known as gold leaf, are primarily used in arts and crafts for gilding. One sheet of gold leaf can be as thin as 0.000127 millimeters, or about 400 times thinner than a human hair.
Pure gold is soft and is usually alloyed with other metals, such as silver, copper, platinum or palladium, to increase its strength. Gold alloys are used to make jewelry, decorative items, dental fillings and coins. The amount of gold in an alloy is measured with a unit called a karat. One karat is equal to one part in twenty-four, so an 18 karat gold ring contains 18 parts pure gold and 6 parts alloy material.
Gold is a good conductor of heat and electricity and does not tarnish when it is exposed to the air, so it can be used to make electrical connectors and printed circuit boards. Gold is also a good reflector of infrared radiation and can be used to help shield spacecraft and skyscrapers from the sun's heat. Gold coated mirrors can be used to make telescopes that are sensitive to infrared light.
A radioactive isotope of gold, gold-198, is used for treating cancer. Gold sodium thiosulfate (AuNa3O6S4) is used as a treatment for arthritis. Chlorauric acid (HAuCl4) is used to preserve photographs by replacing the silver atoms present in an image.
It is used in coinage and is a standard for monetary systems in many countries. It is also extensively used for jewelry, decoration, dental work, and for plating. It is used for coating certain space satellites, as it is a good reflector of infrared and is inert.
Isotopes in Biology
195Au (with a half-life of about 0.51 year) has been used to study particle movement within the lungs of rats [528] G. Patrick, C. Stirling. Environ. Health Perspect.97, 47 (1992).. 198Au (with a half-life of 2.7 days) was used in a study to model gold cycling in plants. This study demonstrated that gold particles are retained by humates (organic constituents of soil), which contain fulvic acid, humic acid, ulmic acid, and lignin and would therefore be likely to accumulate in mull humus or forest litter [529] K. C. Jones, P. J. Peterson. Biogeochemistry7, 3 (1989)..
Isotopes in Medicine
198Au has several medical uses. It has been used as both a diagnostic tool and a treatment option for cancer [530] N. Chanda, P. Kan, L. D. Watkinson, R. Shukla, A. Zambre, T. L. Carmack, H. Engelbrecht, J. R. Lever, K. Katti, G. M. Fent, S. W. Casteel, C. J. Smith, W. H. Miller, S. Jurisson, E. Boote, J. D. Robertson, C. Cutler, M. Dobrovolskaia, R. Kannan, K. V. Katti. Nanomed-Nanotechnol.6, 201 (2010)., [531] C. W. H. Havard, J. McAlister. Br. Med. J.2, 555 (1967)..
–As a diagnostic tool, colloidal 198Au is injected into the affected organ. Normal cells will take up the gold colloid, but tumor cells will not. Therefore, an abscess will show up as a “cold area” on a scan [531] C. W. H. Havard, J. McAlister. Br. Med. J.2, 555 (1967)..
–As a treatment option, gold is intended to provide localized irradiation and can be implanted or injected into the affected area. When implanted, the gold “seed” offers an advantage over other materials in that it can be left in place due to its short half-life (2.7 days). As a colloidal injection, 198Au has been found to produce improvement from a wide variety of cancers [530] N. Chanda, P. Kan, L. D. Watkinson, R. Shukla, A. Zambre, T. L. Carmack, H. Engelbrecht, J. R. Lever, K. Katti, G. M. Fent, S. W. Casteel, C. J. Smith, W. H. Miller, S. Jurisson, E. Boote, J. D. Robertson, C. Cutler, M. Dobrovolskaia, R. Kannan, K. V. Katti. Nanomed-Nanotechnol.6, 201 (2010).. Figure 4.79.1a and 4.79.1b, respectively, show squamous cell carcinoma (cancer) on the lower left eyelid of a cat and the eyelid 6 weeks after implantation of 198Au seeds [532] C. Hardman, R. Stanley. Aust. Vet. J.79, 604 (2001)..
Recent studies have shown the effectiveness of 198Au nanoparticles and nanodevices in reducing tumor size in mice while minimizing radiation spread to other areas [530] N. Chanda, P. Kan, L. D. Watkinson, R. Shukla, A. Zambre, T. L. Carmack, H. Engelbrecht, J. R. Lever, K. Katti, G. M. Fent, S. W. Casteel, C. J. Smith, W. H. Miller, S. Jurisson, E. Boote, J. D. Robertson, C. Cutler, M. Dobrovolskaia, R. Kannan, K. V. Katti. Nanomed-Nanotechnol.6, 201 (2010)., [533] M. K. Khan, L. D. Minc, S. S. Nigavekar, M. S. T. Kariapper, B. M. Nair, M. Schipper, A. C. Cook, W. G. Lesniak, L. P. Balogh. Nanomedicine4, 57 (2008)., [534] H. B. Wheeler, W. E. Jaques, T. W. Botsford. Ann. Surg.141, 208 (1955).. 198Au has been studied and successfully used as an anti-inflammatory (a substance or treatment that reduces the body tissues response to harmful stimuli, such as swelling) for improving arthritic conditions [535] A. M. Spencer, M. P. Patel, B. J. Smits, J. D. F. Williams. Br. Med. J.4 (5937), 153 (1974)., [536] J. R. Topp, E. G. Cross, A. G. Fam. Can. Med. Assoc. J.112, 1085 (1975)..
Gold commonly forms compounds in the +1 and +3 oxidation states, while metallic gold is unusually noble. Chloroauric acid, HAuCl₄, is an important laboratory and refining intermediate, and tetrachloroaurate(III), [AuCl₄]⁻, is a common soluble gold complex. Gold(I) cyanide, AuCN, and dicyanoaurate(I), [Au(CN)₂]⁻, are central to cyanide leaching. Gold forms stable complexes with soft donor ligands such as phosphines, sulfides, and thiolates. Simple gold oxides are relatively unstable compared with those of many transition metals.
See more information at the Gold compound page.
Bulk metallic gold is chemically inert and is generally not a major toxicity hazard, but powders and fumes can present exposure risks in industrial work. Soluble gold salts may be irritants, sensitizers, or systemically toxic, depending on the compound. Cyanide-based gold processing involves hazards from cyanide salts and hydrogen cyanide, HCN, rather than from gold itself. Radioactive gold isotopes require isotope-specific radiation controls.
Gold occurs naturally at very low concentrations in rocks, sediments, seawater, and hydrothermal deposits. Weathering can release native particles that accumulate in placer deposits because of gold's high density and chemical persistence. In soils and waters, gold is usually immobile, but complexation by chloride, cyanide, thiosulfate, or organic sulfur compounds can increase transport. Mining and processing can disturb large volumes of material and may release associated elements such as arsenic or mercury where they are present.
Gold is mined from hard-rock deposits and placers, and is also recovered as a by-product from some copper, nickel, and polymetallic ores. Extraction commonly uses gravity concentration, flotation, smelting, and cyanide leaching, depending on ore type. Supply is supplemented by extensive recycling from jewelry, electronics, and industrial scrap. Demand is split among jewelry, investment, central-bank reserves, and technology. Because gold is highly valued and chemically durable, much of the metal ever refined remains recoverable, although dispersed uses in electronics can be difficult to reclaim economically.
It occurs in veins and alluvial deposits, and is often separated from rocks and other minerals by mining and panning operations. About two thirds of the world's gold output comes from South Africa, and about two thirds of the total U.S. production comes from South Dakota and Nevada. The metal is recovered from its ores by cyaniding, amalgamating, and smelting processes. Refining is also frequently done by electrolysis. Gold occurs in sea water to the extent of 0.1 to 2 mg/ton, depending on the location where the sample is taken. As yet, no method has been found for recovering gold from sea water profitably.
Gold is a rare heavy element in the cosmos. It is produced mainly by rapid neutron-capture nucleosynthesis, with neutron-star mergers strongly implicated and some contribution from rare supernova environments possible. In the early Solar System, gold partitioned strongly into metallic phases, so much of Earth's original inventory is thought to reside in the core. Crustal gold is concentrated by later geological processes.
- Gold can be beaten into leaf thin enough to transmit greenish light.
- The symbol Au comes from the Latin name aurum.
- Gold is one of the few metals that is strongly yellow in bulk form.
- Native gold commonly contains silver; electrum is a natural gold-silver alloy.
- Gold's resistance to tarnish makes it useful for low-current electrical contacts.
- Aqua regia dissolves gold by combining oxidation with chloride complex formation.
Hình ảnh
Tính chất
Vật lý
- Bán kính nguyên tử (thực nghiệm)
- 135 pm So sánh Bán kính nguyên tử (thực nghiệm) của tất cả nguyên tố →
- Bán kính cộng hóa trị
- 136 pm So sánh Bán kính cộng hóa trị của tất cả nguyên tố →
- Bán kính van der Waals
- 166 pm So sánh Bán kính van der Waals của tất cả nguyên tố →
- Bán kính kim loại
- 134 pm So sánh Bán kính kim loại của tất cả nguyên tố →
- Khối lượng riêng
- 1,9282 × 104 kg/m³ So sánh Khối lượng riêng của tất cả nguyên tố →
- Thể tích mol
- 0,0102 L/mol
- Pha ở STP
- Rắn So sánh Pha ở STP của tất cả nguyên tố →
- Nhiệt độ nóng chảy
- 1064,18 °C So sánh Nhiệt độ nóng chảy của tất cả nguyên tố →
- Nhiệt độ sôi
- 2855,85 °C So sánh Nhiệt độ sôi của tất cả nguyên tố →
- Độ dẫn nhiệt
- 318 W/(m·K) So sánh Độ dẫn nhiệt của tất cả nguyên tố →
- Nhiệt dung riêng
- 0,129 J/(g·K) So sánh Nhiệt dung riêng của tất cả nguyên tố →
- Nhiệt dung mol
- 25,418 J/(mol·K) So sánh Nhiệt dung mol của tất cả nguyên tố →
- Cấu trúc tinh thể
- Lập phương tâm mặt So sánh Cấu trúc tinh thể của tất cả nguyên tố →
Hóa học
- Độ âm điện (Pauling)
- 2,54 So sánh Độ âm điện (Pauling) của tất cả nguyên tố →
- Độ âm điện (Allen)
- 1,92
- Ái lực electron
- 2,3086 eV
- Năng lượng ion hóa (lần 1)
- 9,225554 eV So sánh Năng lượng ion hóa (lần 1) của tất cả nguyên tố →
- Năng lượng ion hóa (lần 2)
- 20,20307 eV So sánh Năng lượng ion hóa (lần 2) của tất cả nguyên tố →
- Năng lượng ion hóa (lần 3)
- 30,000103 eV So sánh Năng lượng ion hóa (lần 3) của tất cả nguyên tố →
- Năng lượng ion hóa (lần 4)
- 45,000155 eV So sánh Năng lượng ion hóa (lần 4) của tất cả nguyên tố →
- Năng lượng ion hóa (lần 5)
- 60,000207 eV So sánh Năng lượng ion hóa (lần 5) của tất cả nguyên tố →
- Trạng thái oxi hóa
- −3, −2, −1, 0, +1, +2, +3, +5 So sánh Trạng thái oxi hóa của tất cả nguyên tố →
- Electron hóa trị
- 11 So sánh Electron hóa trị của tất cả nguyên tố →
- Cấu hình electron
- [Xe] 6s1 4f14 5d10
Nhiệt động lực học
- Nhiệt nóng chảy
- 0,13007203 eV So sánh Nhiệt nóng chảy của tất cả nguyên tố →
- Nhiệt hóa hơi
- 3,358035 eV So sánh Nhiệt hóa hơi của tất cả nguyên tố →
- Nhiệt thăng hoa
- 3,814064 eV
- Nhiệt nguyên tử hóa
- 3,814064 eV
- Enthalpy nguyên tử hóa
- 3,816137 eV
Hạt nhân
- Proton
- 79 So sánh Proton của tất cả nguyên tố →
- Neutron
- 118 So sánh Neutron của tất cả nguyên tố →
- Các đồng vị đã biết
- 43 So sánh Các đồng vị đã biết của tất cả nguyên tố →
- Đồng vị bền
- 1 So sánh Đồng vị bền của tất cả nguyên tố →
- Đồng vị bền nhất
- Au-197
Độ phổ biến
- Độ phổ biến (vỏ Trái Đất)
- 0,004 mg/kg So sánh Độ phổ biến (vỏ Trái Đất) của tất cả nguyên tố →
- Độ phổ biến (đại dương)
- 4 × 10−6 mg/L So sánh Độ phổ biến (đại dương) của tất cả nguyên tố →
Cấu trúc tinh thể
- Hằng số mạng a
- 408 pm
Cấu trúc electron
- Số electron trong mỗi lớp
- 2, 8, 18, 32, 18, 1 So sánh Số electron trong mỗi lớp của tất cả nguyên tố →
Mã định danh
- Số CAS
- 7440-57-5 So sánh Số CAS của tất cả nguyên tố →
- Ký hiệu số hạng
- 2S1/2
- InChI
- InChI=1S/Au
- Khóa InChI
- PCHJSUWPFVWCPO-UHFFFAOYSA-N
Cấu hình electron Đo đạc
Au: 4f¹⁴ 5d¹⁰ 6s¹[Xe] 4f¹⁴ 5d¹⁰ 6s¹1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹⁰ 5s² 5p⁶ 4f¹⁴ 5d¹⁰ 6s¹Mô hình nguyên tử
Các đồng vị khác nhau về số neutron, khối lượng và độ bền — không khác nhau về cấu hình electron của nguyên tử trung hòa.
Mô hình nguyên tử minh họa, không theo tỷ lệ.
Dấu vân tay nguyên tử
Phổ phát xạ / hấp thụ
Phân bố đồng vị
| Số khối | Khối lượng nguyên tử (u) | Độ phổ biến tự nhiên | Chu kỳ bán rã |
|---|---|---|---|
| 197 Bền | 196,96656879 ± 0,00000071 | 100,0000% | Bền |
Pha / Trạng thái
Lý do: thấp hơn nhiệt độ nóng chảy (1064,18 °C) một lượng 1039,2 °C
Sơ đồ minh họa, không theo tỷ lệ
Điểm chuyển pha
Năng lượng chuyển pha
Năng lượng cần để làm nóng chảy 1 mol tại nhiệt độ nóng chảy
Năng lượng cần để hóa hơi 1 mol tại nhiệt độ sôi
Năng lượng cần để làm thăng hoa 1 mol tại nhiệt độ thăng hoa
Khối lượng riêng
Ở điều kiện chuẩn
Ở điều kiện chuẩn
Phổ nguyên tử
Đang hiển thị 10 trên 79. Sắp xếp theo điện tích ion (tăng dần).
Dữ liệu vạch phổ ?
| Ion | Điện tích | Tổng số vạch | Xác suất chuyển mức | Ký hiệu mức năng lượng |
|---|---|---|---|---|
| Au I | 0 | 191 | 20 | 90 |
| Au II | +1 | 111 | 0 | 10 |
| Au III | +2 | 150 | 0 | 0 |
Dữ liệu mức năng lượng ?
| Ion | Điện tích | Mức năng lượng |
|---|---|---|
| Au I | 0 | 75 |
| Au II | +1 | 48 |
| Au III | +2 | 2 |
| Au IV | +3 | 2 |
| Au V | +4 | 2 |
| Au VI | +5 | 2 |
| Au VII | +6 | 2 |
| Au VIII | +7 | 2 |
| Au IX | +8 | 2 |
| Au X | +9 | 2 |
Bán kính ion
| Điện tích | Phối trí | Spin | Bán kính |
|---|---|---|---|
| +1 | 6 | Không có | 137 pm |
| +3 | 4 | Không có | 68 pm |
| +3 | 6 | Không có | 85 pm |
| +5 | 6 | Không có | 56.99999999999999 pm |
Hợp chất
Đồng vị (1)
The most common gold compounds are auric chloride and chlorauric acid, the latter being used in photography for toning the silver image. Gold has 18 isotopes; 198Au, with a half-life of 2.7 days, is used for treating cancer and other diseases. Disodium aurothiomalate is administered intramuscularly as a treatment for arthritis. A mixture of one part nitric acid with three of hydrochloric acid is called aqua regia (because it dissolved gold, the King of Metals). Gold is available commercially with a purity of 99.999+%. For many years the temperature assigned to the freezing point of gold has been 1063.0C; this has served as a calibration point for the International Temperature Scales (ITS-27 and ITS-48) and the International Practical Temperature Scale (IPTS-48). In 1968, a new International Practical Temperature Scale (IPTS-68) was adopted, which demands that the freezing point of gold be changed to 1064.43C. The specific gravity of gold has been found to vary considerably depending on temperature, how the metal is precipitated, and cold-worked.
| Số khối | Khối lượng nguyên tử (u) | Độ phổ biến tự nhiên | Chu kỳ bán rã | Kiểu phân rã | |
|---|---|---|---|---|---|
| 197 Bền | 196,96656879 ± 0,00000071 | 100,0000% | Bền | stable |
Tính chất mở rộng
Bán kính cộng hóa trị (mở rộng)
- Bán kính cộng hóa trị (Pyykkö)
- 124 pm
- Bán kính cộng hóa trị (Pyykkö, liên kết đôi)
- 121 pm
- Bán kính cộng hóa trị (Pyykkö, liên kết ba)
- 123 pm
Bán kính van der Waals
- Batsanov
- 210 pm
- Alvarez
- 232 pm
- UFF
- 329,3 pm
- MM3
- 243 pm
Bán kính nguyên tử và kim loại
- Bán kính nguyên tử (Rahm)
- 226 pm
- Bán kính kim loại (C12)
- 144 pm
Các thang đánh số
- Mendeleev
- 73
- Pettifor
- 70
- Glawe
- 66
Các thang độ âm điện
- Ghosh
- 0
- Miedema
- 5
- Gunnarsson–Lundqvist
- 5
- Robles–Bartolotti
- 4
Độ phân cực hóa và tán sắc
- Độ phân cực hóa lưỡng cực
- 36 a.u.
- Độ phân cực hóa lưỡng cực (độ không đảm bảo)
- 3 a.u.
- C₆ (Gould–Bučko)
- 427 Ha·Bohr6
Thông số Miedema
- Thể tích mol Miedema
- 10,2 cm3/mol
- Mật độ electron Miedema
- 4
Rủi ro nguồn cung và kinh tế
- Mức độ tập trung sản xuất
- 13
- Rủi ro nguồn cung tương đối
- 6
- Phân bố trữ lượng
- 15
- Ổn định chính trị (quốc gia sản xuất lớn nhất)
- 24
- Ổn định chính trị (quốc gia có trữ lượng lớn nhất)
- 75
Chuyển pha và các dạng thù hình
| Nhiệt độ nóng chảy | 1337,33 K |
| Nhiệt độ sôi | 3109,15 K |
Phân loại trạng thái oxi hóa
Dữ liệu tham khảo chuyên sâu
Hằng số chắn (14)
| n | Orbital | σ |
|---|---|---|
| 1 | s | 1,5239 |
| 2 | p | 4,4868 |
| 2 | s | 20,6302 |
| 3 | d | 13,4917 |
| 3 | p | 22,297 |
| 3 | s | 23,2372 |
| 4 | d | 37,472 |
| 4 | f | 38,3504 |
| 4 | p | 35,4532 |
| 4 | s | 34,5868 |
Chi tiết bán kính tinh thể (4)
| Điện tích | CN | Spin | rcrystal (pm) | Nguồn gốc |
|---|---|---|---|---|
| 1 | VI | 151 | Ahrens (1952) ionic radius, | |
| 3 | IVSQ | 82 | ||
| 3 | VI | 99 | Ahrens (1952) ionic radius, | |
| 5 | VI | 71 |
Các kiểu phân rã đồng vị (71)
| Đồng vị | Chế độ | Cường độ |
|---|---|---|
| 168 | p | — |
| 169 | p | — |
| 169 | A | — |
| 169 | B+ | — |
| 170 | p | 89% |
| 170 | A | 11% |
| 171 | p | 100% |
| 171 | A | — |
| 172 | A | 100% |
| 172 | p | — |
Hệ số tán xạ tia X (506)
| Năng lượng (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 1,73645 |
| 10,1617 | — | 1,81425 |
| 10,3261 | — | 1,89553 |
| 10,4931 | — | 1,98045 |
| 10,6628 | — | 2,06919 |
| 10,8353 | — | 2,16029 |
| 11,0106 | — | 2,25522 |
| 11,1886 | — | 2,35433 |
| 11,3696 | — | 2,45698 |
| 11,5535 | — | 2,56237 |
Dữ liệu bổ sung
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
4×10-3 milligrams per kilogram
Tài liệu tham khảo (1)
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
4×10-6 milligrams per liter
Tài liệu tham khảo (1)
Sources
Sources of this element.
It occurs in veins and alluvial deposits, and is often separated from rocks and other minerals by mining and panning operations. About two thirds of the world's gold output comes from South Africa, and about two thirds of the total U.S. production comes from South Dakota and Nevada. The metal is recovered from its ores by cyaniding, amalgamating, and smelting processes. Refining is also frequently done by electrolysis. Gold occurs in sea water to the extent of 0.1 to 2 mg/ton, depending on the location where the sample is taken. As yet, no method has been found for recovering gold from sea water profitably.
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- [6] Gold https://periodic.lanl.gov/79.shtml
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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 Gold.
The element property data was retrieved from publications.

