Pb 82

Lead (Pb)

post-transition-metal
周期: 6 族: 14 区: p

Solid

标准原子量

207.2 u [206.14, 207.94]

电子排布

[Xe] 6s2 4f14 5d10 6p2

熔点

327.46 °C

沸点

1748.85 °C

密度

1.1342e+4 kg/m³

氧化态

−4, −2, −1, 0, +1, +2, +3, +4

电负性(鲍林)

2.33

第一电离能

7.41668 eV

发现年份

2021

原子半径

180 pm

详细信息

名称来源 Anglo-Saxon: lead; symbol from Latin: plumbum.
发现者 Known to the ancients.

Lead is a dense, soft post-transition metal with atomic number 82. It is chemically characterized by the +2 oxidation state, with +4 less stable except in selected compounds, a pattern influenced by the inert-pair effect. Lead has been used since antiquity because it is easily smelted and worked, but its toxicity now strongly limits dispersive uses. It remains important where high density, corrosion resistance, low melting point, and radiation attenuation are valuable.

Lead is a bluish-white metal of bright luster. It is very soft, highly malleable, ductile, and a poor conductor of electricity. It is very resistant to corrosion; lead pipes bearing the insignia of Roman emperors, used as drains from the baths, are still in service. It is used in containers for corrosive liquids (such as sulfuric acid) and may be toughened by the addition of a small percentage of antimony or other metals.

The name derives from the Anglo-Saxon lead, which is of unknown origin. The element was known from prehistoric times. The chemical symbol Pb is derived from the Latin plumbum.

<!-- --> <p class="caption">For more information about the natural variations of the atomic weight of lead please read IUPAC Technical Report Variation of lead isotopic composition and atomic weight in terrestrial materials (IUPAC Technical Report) <img src="images/pdf.gif" style="width:auto; margin:0; vertical-align:bottom;"> by Z.-K. Zhu et al Pure Appl. Chem. <strong>93</strong>, 155-166 (2021).

Lead has been known since ancient times. It is sometimes found free in nature, but is usually obtained from the ores galena (PbS), anglesite (PbSO4), cerussite (PbCO3) and minum (Pb3O4). Although lead makes up only about 0.0013% of the earth's crust, it is not considered to be a rare element since it is easily mined and refined. Most lead is obtained by roasting galena in hot air, although nearly one third of the lead used in the United States is obtained through recycling efforts.

Long known, mentioned in Exodus. The alchemists believed lead to be the oldest metal and associated with the planet Saturn. Native lead occurs in nature, but is rare.

图片

性质

物理性质

原子半径(经验值)
180 pm 比较所有元素的原子半径(经验值) →
共价半径
146 pm 比较所有元素的共价半径 →
范德华半径
202 pm 比较所有元素的范德华半径 →
金属半径
150 pm 比较所有元素的金属半径 →
密度
1.1342 × 104 kg/m³ 比较所有元素的密度 →
摩尔体积
0.0183 L/mol
标准温度和压力下的物相
固态 比较所有元素的标准温度和压力下的物相 →
熔点
327.46 °C 比较所有元素的熔点 →
沸点
1748.85 °C 比较所有元素的沸点 →
热导率
35.3 W/(m·K) 比较所有元素的热导率 →
比热容
0.13 J/(g·K) 比较所有元素的比热容 →
摩尔热容
26.84 J/(mol·K) 比较所有元素的摩尔热容 →
晶体结构
面心立方 比较所有元素的晶体结构 →

化学性质

电负性(鲍林)
2.33 比较所有元素的电负性(鲍林) →
电负性(Allen)
1.854
电子亲和能
0.364 eV
第一电离能
7.41668 eV 比较所有元素的第一电离能 →
第二电离能
15.032551 eV 比较所有元素的第二电离能 →
第三电离能
31.93741 eV 比较所有元素的第三电离能 →
第四电离能
42.332706 eV 比较所有元素的第四电离能 →
第五电离能
68.800237 eV 比较所有元素的第五电离能 →
氧化态
−4, −2, −1, 0, +1, +2, +3, +4 比较所有元素的氧化态 →
价电子
4 比较所有元素的价电子 →
电子排布
[Xe] 6s2 4f14 5d10 6p2

热力学性质

熔化热
0.04943774 eV 比较所有元素的熔化热 →
汽化热
1.860393 eV 比较所有元素的汽化热 →
升华热
2.023112 eV
原子化热
2.023112 eV
原子化焓
2.023112 eV

核性质

质子
82 比较所有元素的质子 →
中子
126 比较所有元素的中子 →
已知同位素
43 比较所有元素的已知同位素 →
稳定同位素
0 比较所有元素的稳定同位素 →
最稳定同位素
Pb-208
发现年份
2021

丰度

丰度(地壳)
14 mg/kg 比较所有元素的丰度(地壳) →
丰度(海洋)
3 × 10−5 mg/L 比较所有元素的丰度(海洋) →

晶体结构

晶格常数a
495 pm

电子结构

各电子层电子数
2, 8, 18, 32, 18, 4 比较所有元素的各电子层电子数 →

标识符

CAS登记号
7439-92-1 比较所有元素的CAS登记号 →
谱项符号
(1/2,1/2)0
InChI
InChI=1S/Pb
InChI Key
WABPQHHGFIMREM-UHFFFAOYSA-N

电子排布 实测值

离子电荷
质子 82
电子 82
电荷 中性
电子排布 Pb: 4f¹⁴ 5d¹⁰ 6s² 6p²
电子排布
实测值
[Xe] 4f¹⁴ 5d¹⁰ 6s² 6p²
1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹⁰ 5s² 5p⁶ 4f¹⁴ 5d¹⁰ 6s² 6p²
轨道图
1s
2/2
2s
2/2
2p
6/6
3s
2/2
3p
6/6
4s
2/2
3d
10/10
4p
6/6
5s
2/2
4d
10/10
5p
6/6
6s
2/2
4f
14/14
5d
10/10
6p
2/6 2↑
电子总数: 82 未配对: 2 ?

原子模型

质子 82
中子 102
电子 82
质量数 184
稳定性 放射性

不同同位素的中子数、质量和稳定性不同,但中性原子的电子排布不变。

原子模型示意图,未按比例绘制。

原子指纹

发射 / 吸收光谱

25 / 26 (26 26条具有强度数据)
实测值
发射 可见光:380–750 nm

同位素分布

无稳定同位素。

质量数原子质量(u)天然丰度半衰期
183 放射性182.991872 ± 0.00003暂无535 ms
184 放射性183.988136 ± 0.000014暂无490 ms
178 放射性178.003831 ± 0.000026暂无250 us
215 放射性215.00474 ± 0.00011暂无142 秒
204 放射性203.973044 ± 0.00000131.4000%140 Py
实测值

物相 / 状态

1 atm / 101.325 kPa
固态 25 °C (298.15 K)

原因: 低于熔点(327.46 °C)302.5 °C

熔点 327.46 °C
沸点 1748.85 °C
低于熔点的温差 302.5 °C
0 K 当前温度: 25 °C 6000 K
物相变化轴

示意图,未按比例绘制

固态
液态
气态
熔化
沸腾
25°C
固态
液态
气态
当前

相变点

熔点 文献值
327.46 °C
沸点 文献值
1748.85 °C
当前物相 计算值
固态

相变能

熔化热 文献值
0.04943774 eV

在熔点熔化1 mol物质所需的能量

汽化热 文献值
1.860393 eV

在沸点汽化1 mol物质所需的能量

升华热 文献值
2.023112 eV

在升华点升华1 mol物质所需的能量

密度

参考密度 文献值
1.1342e+4 kg/m³

标准条件下

当前密度 计算值
1.1342e+4 kg/m³

标准条件下

原子光谱

已显示10项,共82项。 按离子电荷升序排列。

收录谱线 ?

离子电荷谱线总数跃迁概率能级标记
Pb I 013528135
Pb II +197312
Pb III +24100
Pb IV +39200
Pb V +49000
NIST收录谱线 →

收录能级 ?

离子电荷能级
Pb I 0136
Pb II +195
Pb III +2124
Pb IV +3108
Pb V +445
Pb VI +52
Pb VII +62
Pb VIII +72
Pb IX +82
Pb X +92
NIST收录能级 →
82 Pb 207.2

Lead — 原子轨道可视化工具

[Xe]6s24f145d106p2
能级 2 8 18 32 18 4
氧化态 -4, -2, -1, 0, +1, +2, +3, +4
HOMO 6p n=6 · l=1 · m=-1
Lead — 原子轨道可视化预览
Three.js仅在需要时加载
82 Pb 207.2

Lead — 晶体结构可视化工具

Face-Centered Cubic · 皮尔逊符号 cF4
实验数据
皮尔逊符号 cF4
配位数 12
堆积系数 74.000%
Lead — 晶体结构可视化预览
Three.js仅在需要时加载

离子半径

已显示10项,共12项。

电荷配位自旋半径
+24暂无98 pm
+26暂无119 pm
+27暂无123 pm
+28暂无129 pm
+29暂无135 pm
+210暂无140 pm
+211暂无145 pm
+212暂无149 pm
+44暂无65 pm
+45暂无73 pm

化合物

Pb
207.000 u
Pb+2
207.000 u
Pb
209.984 u
Pb
214.000 u
Pb
211.992 u
Pb
205.974 u
Pb
206.976 u
Pb
207.977 u
Pb
203.973 u
Pb
202.973 u
Pb
204.974 u
Pb
208.981 u
Pb
210.989 u
Pb
200.973 u
Pb
199.972 u
Pb
197.972 u
Pb
198.973 u
Pb
201.972 u
Pb
194.975 u
Pb
218.017 u
Pb+2
211.992 u
Pb
193.974 u
Pb
195.973 u
Pb
196.973 u
Pb
212.997 u

同位素 (5)

质量数原子质量(u)天然丰度半衰期衰变方式
183 放射性182.991872 ± 0.00003暂无535 ms
α ≈100%β+ ?
184 放射性183.988136 ± 0.000014暂无490 ms
α =80±1.1%β+ ?
178 放射性178.003831 ± 0.000026暂无250 us
α ≈100%β+ ?
215 放射性215.00474 ± 0.00011暂无142 秒
β- =100%
204 放射性203.973044 ± 0.00000131.4000% ± 0.1000%140 Py
IS =1.4±0.6%α ?
183 放射性
原子质量(u) 182.991872 ± 0.00003
天然丰度 暂无
半衰期 535 ms
衰变方式
α ≈100%β+ ?
184 放射性
原子质量(u) 183.988136 ± 0.000014
天然丰度 暂无
半衰期 490 ms
衰变方式
α =80±1.1%β+ ?
178 放射性
原子质量(u) 178.003831 ± 0.000026
天然丰度 暂无
半衰期 250 us
衰变方式
α ≈100%β+ ?
215 放射性
原子质量(u) 215.00474 ± 0.00011
天然丰度 暂无
半衰期 142 秒
衰变方式
β- =100%
204 放射性
原子质量(u) 203.973044 ± 0.0000013
天然丰度 1.4000% ± 0.1000%
半衰期 140 Py
衰变方式
IS =1.4±0.6%α ?

谱线

波长(nm)强度电离级类型跃迁准确度来源
401.96322 nm15000Pb Iemission6s2.6p2 (3/2,3/2) → 6s2.6p.(2P*<1/2>).6d 2[5/2]*实测值NIST
405.780659 nm95000Pb Iemission6s2.6p2 (3/2,1/2) → 6s2.6p.7s (1/2,1/2)*实测值NIST
406.213593 nm14000Pb Iemission6s2.6p2 (3/2,3/2) → 6s2.6p.(2P*<1/2>).6d 2[3/2]*实测值NIST
415.78144 nm10Pb Iemission6s2.6p2 (3/2,3/2) → 6s2.6p.9s (1/2,1/2)*实测值NIST
416.80327 nm10000Pb Iemission6s2.6p2 (3/2,3/2) → 6s2.6p.(2P*<1/2>).6d 2[5/2]*实测值NIST
434.041263 nm200Pb Iemission6s2.6p2 (3/2,3/2) → 6s2.6p.(2P*<1/2>).7d 2[3/2]*实测值NIST
500.54165 nm1000Pb Iemission6s2.6p2 (3/2,3/2) → 6s2.6p.7s (3/2,1/2)*实测值NIST
500.65724 nm100Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.9p (1/2,3/2)实测值NIST
507.6322 nm10Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.9p (1/2,1/2)实测值NIST
508.94835 nm50Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.9p (1/2,3/2)实测值NIST
509.00083 nm20Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.9p (1/2,3/2)实测值NIST
510.72427 nm10Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.9p (1/2,1/2)实测值NIST
520.14372 nm2000Pb Iemission6s2.6p2 (3/2,3/2) → 6s2.6p.8s (1/2,1/2)*实测值NIST
569.23465 nm40Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.(2P*<1/2>).5f 2[5/2]实测值NIST
589.56245 nm200Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.8p (1/2,3/2)实测值NIST
600.18624 nm2000Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.8p (1/2,3/2)实测值NIST
601.16667 nm500Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.8p (1/2,3/2)实测值NIST
605.93556 nm500Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.8p (1/2,1/2)实测值NIST
611.05203 nm50Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.8p (1/2,1/2)实测值NIST
623.52656 nm100Pb Iemission6s2.6p.7s (1/2,1/2)* → 6s2.6p.8p (1/2,1/2)实测值NIST
689.2117 nm10Pb Iemission6s2.6p.7p (1/2,1/2) → 6s2.6p.(2P*<1/2>).10d 2[5/2]*实测值NIST
712.893 nm5Pb Iemission6s2.6p.7p (1/2,1/2) → 6s2.6p.11s (1/2,1/2)*实测值NIST
722.89658 nm20000Pb Iemission6s2.6p2 (3/2,3/2) → 6s2.6p.7s (1/2,1/2)*实测值NIST
730.46753 nm5Pb Iemission6s2.6p.7p (1/2,1/2) → 6s2.6p.(2P*<1/2>).9d 2[3/2]*实测值NIST
733.0146 nm8Pb Iemission6s2.6p2 (3/2,1/2) → 6s2.6p2 (3/2,3/2)实测值NIST
734.6676 nm10Pb Iemission6s2.6p.7p (1/2,1/2) → 6s2.6p.(2P*<1/2>).9d 2[5/2]*实测值NIST

扩展性质

共价半径(扩展)

共价半径(Pyykkö)
144 pm
共价半径(Pyykkö,双键)
135 pm
共价半径(Pyykkö,三键)
137 pm

范德华半径

Bondi
202 pm
Batsanov
230 pm
Alvarez
260 pm
UFF
429.7 pm
MM3
274 pm

原子半径与金属半径

原子半径(Rahm)
249 pm
金属半径(C12)
170 pm

编号标度

Mendeleev
91
Pettifor
82
Glawe
82

电负性标度

Ghosh
0
Miedema
4
Gunnarsson–Lundqvist
4
Robles–Bartolotti
4

极化率与色散

偶极极化率
47 a.u.
偶极极化率(不确定度)
3 a.u.
C₆ (Gould–Bučko)
534 Ha·Bohr6

Miedema参数

Miedema摩尔体积
18.28 cm3/mol
Miedema电子密度
2

供应风险与经济性

生产集中度
44
相对供应风险
6
储量分布
34
政治稳定性(最大生产国)
24
政治稳定性(最大储量国)
75

相变与同素异形体

熔点600.61 K
沸点2022.15 K

氧化态分类

+4 main
+2 main
0 extended
−2 extended
+1 extended
−1 extended
−4 extended
+3 extended

高级参考数据

屏蔽常数 (15)
n轨道σ
1s1.5805
2p4.5234
2s21.57
3d13.4533
3p22.8505
3s23.8477
4d37.6804
4f38.0312
4p35.9664
4s35.1072
晶体半径详情 (12)
电荷CN自旋rcrystal (pm)来源
2IVPY112calculated,
2VI133
2VII137calculated,
2VIII143calculated,
2IX149calculated,
2X154calculated,
2XI159calculated,
2XII163
4IV79estimated,
4V87estimated,
同位素衰变方式 (59)
同位素模式强度
178A100%
178B+—
179A100%
180A100%
181A100%
181B+—
182A100%
182B+—
183A100%
183B+—
X射线散射因子 (516)
能量 (eV)f₁f₂
10—4.6699
10.1617—4.72735
10.3261—4.78551
10.4931—4.84439
10.6628—4.83957
10.8353—4.83203
11.0106—4.82451
11.1886—4.817
11.3696—4.7889
11.5535—4.7596

补充数据

Sources

Sources of this element.

Lead is obtained chiefly from galena (PbS) by a roasting process. Anglesite, cerussite, and minim are other common lead minerals.

参考文献 (1)

Isotopes in Forensic Science and Anthropology

Information on the use of this element's isotopes in forensic science and anthropology.

Different geographic regions may have characteristic terrestrial lead isotopic compositions because of variations in the ages and chemical composition of the rocks and minerals in the local environment. Therefore, lead produced at a particular location can have a unique lead isotopic composition and it is possible to trace the history and origins of pollutants by measuring the relative amounts of the four stable isotopes of lead (208Pb, 207Pb, 206Pb, and 204Pb) (Fig. IUPAC.82.2) [547] I. Renberg, M. L. Brännvall, R. Bindler, O. Emteryd. Ambio29, 150 (2000)., [548] T. J. Chow, J. L. Earl. Science169, 577 (1970).. Using isotopic abundance data, the source of this toxic metal can be identified as it moves through air and water and eventually to living systems [547] I. Renberg, M. L. Brännvall, R. Bindler, O. Emteryd. Ambio29, 150 (2000)., [549] M. K. Reuer, D. J. Weiss. Math. Phys. Eng. Sci.360, 2889 (2002).. Scientists have analyzed lead in air pollution in California and found that it originated from Asia. Airborne particles from China have relatively higher amounts of 208Pb, which distinguishes the lead isotopic signature between airborne particles from Asia and North America. This knowledge could have implications in understanding the mixing of particles in the atmosphere and how pollutants are transported over vast distances [547] I. Renberg, M. L. Brännvall, R. Bindler, O. Emteryd. Ambio29, 150 (2000)., [549] M. K. Reuer, D. J. Weiss. Math. Phys. Eng. Sci.360, 2889 (2002)., [550] S. A. Ewing, J. N. Christensen, S. T. Brown, R. A. Vancuren, S. S. Cliff, D. J. Depaolo. Environ. Sci. Technol.44, 8911 (2010)., [551] D. Krotz. Lead Isotopes Yield Clues to How Asian Air Pollution Reaches California, Lawrence Berkeley National Laboratory News Center (2014), Feb. 25; http://newscenter.lbl.gov/feature-stories/2010/12/01/lead-isotopes-air-pollution/.. Mapping the distribution of lead pollution by studying 204Pb, 206Pb, 207Pb and 208Pb also allows the identification of those human activities that contribute the highest amounts of lead to the environment [547] I. Renberg, M. L. Brännvall, R. Bindler, O. Emteryd. Ambio29, 150 (2000)., [549] M. K. Reuer, D. J. Weiss. Math. Phys. Eng. Sci.360, 2889 (2002)., [552] D. Cicchella, B. De Vivo, A. Lima, S. Albanese, R. A. R. McGill, R. R. Parrish. Geochem. Explor. Environ. Anal.8, 103 (2008)..

The measurement of the isotopic composition of lead in blood can help to determine the source of this toxic element in the body [553] R. H. Gwiazda, D. R. Smith. Environ. Health Perspect.108, 1091 (2000).. Lead is stored in bones and teeth. If a person moves to a different geographical region, the isotopic composition of the lead in the teeth is maintained, recording their place of origin. Bone can store lead for long periods of time (about 20 years), and some skeletal lead may be older and have a different isotopic composition than other skeletal lead. These differences reflect exposure to lead of different origins. By studying the isotope-amount ratio n(206Pb)/n(204Pb) and n(207Pb)/n(206Pb) in bone and teeth, it is possible to determine someone’s place of origin. For example, isotopes of lead were analyzed in the teeth and bones of a human mummy, known as the “Iceman”, to help determine his place of origin [554] B. L. Gulson, B. R. Gillings. Environ. Health Perspect.105, 820 (1997)., [555] W. Müller, H. Fricke, A. N. Halliday, M. T. McCulloch, J. A. Wartho. Science302, 862 (2003)..

210Pb is a relatively short-lived radioactive isotope of lead that is constantly produced by the decay of 222Rn in the atmosphere. While living, humans naturally incorporate 210Pb from the environment into bones and tissues. The amount of 210Pb in the body reaches equilibrium such that the 210Pb ingested is in equilibrium with the 210Pb that decays. When a person dies, this incorporation of 210Pb ceases and the relative amount of this isotope in the body decreases. Therefore, measurement of the 210Pb activity in a corpse can help determine time of death [556] D. R. Smith, J. D. Osterloh, A. R. Flegal. Environ. Health Perspect.104, 60 (1996)., [557] P. Rincon. “Isotopes could improve forensics”, in BBC News Online..

Lead isotope-amount ratios n(206Pb)/n(204Pb), n(207Pb)/n(204Pb), and n(208Pb)/n(204Pb)) along with isotope-amount ratio of silver, n(107Ag)/n(109Ag), and isotope-amount ratio of copper n(65Cu)/n(63Cu) have been used to determine the origin of European coins and to investigate the flow of goods in the world market over time [237] A. M. Desaulty, P. Telouk, E. Albalat, F. Albarede. Proc. Natl. Acad. Sci.108, 9002 (2011).. 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 were not a major influence in the European coin market until the 18 th century [237] A. M. Desaulty, P. Telouk, E. Albalat, F. Albarede. Proc. Natl. Acad. Sci.108, 9002 (2011)..

参考文献 (13)
  • [237] A. M. Desaulty, P. Telouk, E. Albalat, F. Albarede. Proc. Natl. Acad. Sci.108, 9002 (2011).
  • [547] I. Renberg, M. L. Brännvall, R. Bindler, O. Emteryd. Ambio29, 150 (2000).
  • [548] T. J. Chow, J. L. Earl. Science169, 577 (1970).
  • [549] M. K. Reuer, D. J. Weiss. Math. Phys. Eng. Sci.360, 2889 (2002).
  • [550] S. A. Ewing, J. N. Christensen, S. T. Brown, R. A. Vancuren, S. S. Cliff, D. J. Depaolo. Environ. Sci. Technol.44, 8911 (2010).
  • [551] D. Krotz. Lead Isotopes Yield Clues to How Asian Air Pollution Reaches California, Lawrence Berkeley National Laboratory News Center (2014), Feb. 25; http://newscenter.lbl.gov/feature-stories/2010/12/01/lead-isotopes-air-pollution/.
  • [552] D. Cicchella, B. De Vivo, A. Lima, S. Albanese, R. A. R. McGill, R. R. Parrish. Geochem. Explor. Environ. Anal.8, 103 (2008).
  • [553] R. H. Gwiazda, D. R. Smith. Environ. Health Perspect.108, 1091 (2000).
  • [554] B. L. Gulson, B. R. Gillings. Environ. Health Perspect.105, 820 (1997).
  • [555] W. Müller, H. Fricke, A. N. Halliday, M. T. McCulloch, J. A. Wartho. Science302, 862 (2003).
  • [556] D. R. Smith, J. D. Osterloh, A. R. Flegal. Environ. Health Perspect.104, 60 (1996).
  • [557] P. Rincon. “Isotopes could improve forensics”, in BBC News Online.
  • [4] IUPAC Periodic Table of the Elements and Isotopes (IPTEI) https://doi.org/10.1515/pac-2015-0703

参考文献

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2 Atomic Mass Data Center (AMDC), International Atomic Energy Agency (IAEA)
Pb

The half-life and atomic mass data was provided by the Atomic Mass Data Center at the International Atomic Energy Agency.

3 IUPAC Commission on Isotopic Abundances and Atomic Weights (CIAAW)
Lead

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.

4 IUPAC Periodic Table of the Elements and Isotopes (IPTEI)

The information are cited from Pure Appl. Chem. 2018; 90(12): 1833-2092, https://doi.org/10.1515/pac-2015-0703.

许可证说明: Copyright (c) 2020 International Union of Pure and Applied Chemistry. The International Union of Pure and Applied Chemistry (IUPAC) contribution within Pubchem is provided under a CC-BY-NC-ND 4.0 license, unless otherwise stated.
5 Jefferson Lab, U.S. Department of Energy
Lead

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/

许可证说明: Please see citation and linking information: https://education.jlab.org/faq/index.html
6 Los Alamos National Laboratory, U.S. Department of Energy
Lead

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.

7 NIST Physical Measurement Laboratory
Lead

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

8 PubChem Elements
Lead

This section provides all form of data related to element Lead.

9 PubChem Elements
Lead

The element property data was retrieved from publications.

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