Rubidium (Rb)
alkali-metalSolid
标准原子量
85.4678 u电子排布
[Kr] 5s1熔点
39.31 °C沸点
687.85 °C密度
1530 kg/m³氧化态
−1, +1电负性(鲍林)
0.82第一电离能
4.177128 eV发现年份
1861原子半径
235 pm详细信息
Rubidium is a soft alkali metal of group 1, chemically close to potassium and cesium. Natural rubidium is a mixture dominated by stable ⁸⁵Rb with radioactive ⁸⁷Rb, whose very long half-life makes it important in geochronology. The element is not mined as a principal metal; it is obtained from minerals and brines where it substitutes for potassium. Its low ionization energy and convenient atomic transitions make rubidium useful in precision physics.
Rubidium can be liquid at room temperature. It is a soft, silvery-white metallic element of the alkali group and is the second most electropositive and alkaline element. It ignites spontaneously in air and reacts violently in water, setting fire to the liberated hydrogen. As with other alkali metals, it forms amalgams with mercury and it alloys with gold, cesium, sodium, and potassium. It colors a flame yellowish violet. Rubidium metal can be prepared by reducing rubidium chloride with calcium, and by a number of other methods. It must be kept under a dry mineral oil or in a vacuum or inert atmosphere.
The name derives from the Latin rubidus for "deepest red" because of the two deep red lines in its spectra. Rubidium was discovered in the mineral lepidolite by the German chemist Robert Wilhelm Bunsen and the German physicist Gustav-Robert Kirchoff in 1861. Bunsen isolated rubidium in 1863.
Rubidium was discovered by the German chemists Robert Bunsen and Gustav Kirchhoff in 1861 while analyzing samples of the mineral lepidolite (KLi2Al(Al, Si)3O10(F, OH)2) with a device called a spectroscope. The sample produced a set of deep red spectral lines they had never seen before. Bunsen was eventually able to isolate samples of rubidium metal. Today, most rubidium is obtained as a byproduct of refining lithium.
From the Latin word rubidus, deepest red. Discovered in 1861 by Bunsen and Kirchoff in the mineral lepidolite by use of the spectroscope.
Pure rubidium is a very soft, silvery-white metal that quickly tarnishes in air. It melts just above ordinary room temperature and can be cut easily when protected from moisture and oxygen. Samples are kept under inert gas, vacuum, or dry mineral oil.
Rubidium has specialized rather than bulk uses. Rubidium vapor cells are used in atomic clocks, frequency standards, magnetometers, and some laser-cooling experiments, often using ⁸⁷Rb because its hyperfine transition is convenient. Rubidium compounds have been used in photocathodes, research electronics, and laboratory studies of ion transport. ⁸⁷Rb to ⁸⁷Sr decay underlies rubidium–strontium dating of minerals and rocks. There is no large structural or metallurgical use for the metal.
Rubidium is used in vacuum tubes as a getter, a material that combines with and removes trace gases from vacuum tubes. It is also used in the manufacture of photocells and in special glasses. Since it is easily ionized, it might be used as a propellant in ion engines on spacecraft. Recent discoveries of large deposits of rubidium suggest that its usefulness will increase as its properties become better understood.
Rubidium forms a large number of compounds, although none of them has any significant commercial application. Some of the common rubidium compounds are: rubidium chloride (RbCl), rubidium monoxide (Rb2O) and rubidium copper sulfate Rb2SO4·CuSO4·6H20). A compound of rubidium, silver and iodine, RbAg4I5, has interesting electrical characteristics and might be useful in thin film batteries.
Because rubidium can be easily ionized, it has been considered for use in "ion engines" for space vehicles; however, cesium is somewhat more efficient for this purpose. It is also proposed for use as a working fluid for vapor turbines and for use in a thermoelectric generator using the magnetohydrodynamic principle where rubidium ions are formed by heat at high temperature and passed through a magnetic field. These conduct electricity and act like an amature of a generator thereby generating an electric current. Rubidium is used as a getter in vacuum tubes and as a photocell component. It has been used in making special glasses. RbAg4I5 is important, as it has the highest room conductivity of any known ionic crystal. At 20°C its conductivity is about the same as dilute sulfuric acid. This suggests use in thin film batteries and other applications.
Isotopes in Biology
Due to biological similarities between rubidium and potassium, the radionuclide 86Rb (with a half-life of 18.7 days) is used as a tracer in biological or medical investigations for applications where the half-life of the radioactive-tracer 42K (half-life of 0.5 day) is too short [110] AUS-e-TUTE for Astute Science Students. Chemistry Tutorial: Summary of Radioactive Particles, Isotopes, Properties and Uses, AUS-e-TUTE for Astute Science Students (2014), Feb. 24; http://www.ausetute.com.au/nuclesum.html.. 86Rb (with a half-life of 18.7 days) has been used measure the metabolism in small vertebrates (Fig. IUPAC.37.1), such as dunnarts (furry, narrow-footed marsupials about the size of a mouse) [291] S. Tomlinson, S. K. Maloney, P. C. Withers, C. C. Voigt, A. P. Cruz-Neto. Methods Ecol. Evol.4, 619 (2013).. The advantage of this technique over the standard doubly labelled water method, using water enriched in 2H and 18O, include lower equipment requirements, lower technical expertise, and longer time spans over which measurements can be made. This technique could be very useful for measuring the metabolism of amphibians and insects.
Isotopes in Geochronology
87Rb (with a half-life of 4.97×1010 years) is a long-lived radioisotope that is transformed into 87Sr by emission of a beta-minus particle (an electron) and an antineutrino. From the abundance of 87Sr and the Rb/Sr amount ratio in a rock, its age of crystallization can be calculated. Rb/Sr dating is one of the most widely employed techniques for dating geological samples [292] M. A. Geyh, H. Schleicher. Absolute Age Determination: Physical and Chemical Dating Methods and Their Application, p. 503, Springer-Verlag, Berlin (1990)..
Isotopes in Medicine
82Rb (with a half-life of 75 s) acts similarly to potassium and is used for imaging of the heart to better assess heart muscle function as a radioactive analog to potassium [293] J. vom Dahl, O. Muzik, E. R. Wolfe, C. Allman, G. Hutchins, M. Schwaiger. Circulation93, 238 (1996)., [294] K. L. Gould, K. Yoshida, M. J. Hess, M. Haynie, N. Mullani, R. W. Smalling. J. Nucl. Med.32, 1 (1991).. 82Rb is being considered as an alternative to highly-enriched uranium for producing medically important radioisotopes [293] J. vom Dahl, O. Muzik, E. R. Wolfe, C. Allman, G. Hutchins, M. Schwaiger. Circulation93, 238 (1996)..
Rubidium almost always forms the +1 oxidation state as Rb⁺. Its common salts resemble those of potassium and cesium, including rubidium chloride (RbCl), rubidium bromide (RbBr), rubidium nitrate (RbNO₃), and rubidium carbonate (Rb₂CO₃). The oxide chemistry is sensitive to oxygen conditions; rubidium can form rubidium oxide (Rb₂O), rubidium peroxide (Rb₂O₂), and rubidium superoxide (RbO₂). Rubidium hydroxide (RbOH) is a strong, highly caustic base. Complex salts and alum-type compounds are known, but lower oxidation states are not normal chemistry for the element.
See more information at the Rubidium compound page.
Metallic rubidium is highly reactive and can ignite or explode on contact with water because hydrogen gas, H₂, and rubidium hydroxide (RbOH) are produced with heat. It also reacts rapidly with air and should be handled only under dry inert conditions. Soluble rubidium salts can affect biological ion balance because Rb⁺ partly mimics K⁺, though rubidium is not an essential nutrient. Natural ⁸⁷Rb is weakly radioactive, but its specific activity is low compared with many regulated radionuclides.
Rubidium occurs dispersed in the crust, chiefly substituting for potassium in feldspars, micas, and evaporite or brine systems. It is mobile as Rb⁺ in water but is also adsorbed or fixed by clays and potassium-bearing minerals. Plants can take up rubidium because of its similarity to potassium, yet it has no established essential biological function. Environmental releases are normally small and associated with mineral processing, laboratory use, or weathering.
Rubidium supply is small and specialized. It is usually recovered as a by-product from lithium and cesium-bearing minerals such as lepidolite and pollucite, or from selected brines, rather than from ores mined solely for rubidium. Production involves separation from abundant potassium and chemically similar cesium, which limits availability and keeps costs high for high-purity material. Demand is driven mainly by atomic-clock, research, and specialty chemical markets. Recycling is limited, though sealed vapor-cell devices contain only small amounts.
The element is much more abundant than was thought several years ago. It is now considered to be the 16th most abundant element in the earth's crust. Rubidium occurs in pollucite, leucite, and zinnwaldite, which contains traces up to 1%, in the form of the oxide. It is found in lepidolite to the extent of about 1.5%, and is recovered commercially from this source. Potassium minerals, such as those found at Searles Lake, California, and potassium chloride recovered from the brines in Michigan also contain the element and are commercial sources. It is also found along with cesium in the extensive deposits of pollucite at Bernic Lake, Manitoba.
Rubidium is a trace element in the cosmos. Its isotopes are made mainly by neutron-capture processes in evolved stars, with contributions from both slow and rapid neutron-capture pathways. In planetary materials it behaves as a moderately incompatible lithophile element and follows potassium during rock differentiation. The ⁸⁷Rb–⁸⁷Sr system is widely used to study the ages and source histories of terrestrial and meteoritic materials.
- Rubidium was discovered spectroscopically from deep red emission lines, which inspired its name.
- A sealed rubidium vapor cell can serve as the frequency reference in a compact atomic clock.
- Natural rubidium contains enough ⁸⁷Rb for geologic dating despite its very long half-life.
- Rubidium metal may be liquid in a warm room because its melting point is only about 39 °C.
- Rubidium ions can enter some potassium channels, making rubidium useful as a tracer in physiology research.
图片
性质
物理性质
- 原子半径(经验值)
- 235 pm 比较所有元素的原子半径(经验值) →
- 共价半径
- 220 pm 比较所有元素的共价半径 →
- 范德华半径
- 303 pm 比较所有元素的范德华半径 →
- 金属半径
- 216 pm 比较所有元素的金属半径 →
- 密度
- 1530 kg/m³ 比较所有元素的密度 →
- 摩尔体积
- 0.0559 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
- 39.31 °C 比较所有元素的熔点 →
- 沸点
- 687.85 °C 比较所有元素的沸点 →
- 热导率
- 58.2 W/(m·K) 比较所有元素的热导率 →
- 比热容
- 0.363 J/(g·K) 比较所有元素的比热容 →
- 摩尔热容
- 31.06 J/(mol·K) 比较所有元素的摩尔热容 →
- 晶体结构
- 体心立方 比较所有元素的晶体结构 →
化学性质
- 电负性(鲍林)
- 0.82 比较所有元素的电负性(鲍林) →
- 电负性(Allen)
- 0.706
- 电子亲和能
- 0.4859 eV
- 第一电离能
- 4.177128 eV 比较所有元素的第一电离能 →
- 第二电离能
- 27.289634 eV 比较所有元素的第二电离能 →
- 第三电离能
- 39.247135 eV 比较所有元素的第三电离能 →
- 第四电离能
- 52.20018 eV 比较所有元素的第四电离能 →
- 第五电离能
- 68.440236 eV 比较所有元素的第五电离能 →
- 氧化态
- −1, +1 比较所有元素的氧化态 →
- 价电子
- 1 比较所有元素的价电子 →
- 电子排布
- [Kr] 5s1
热力学性质
- 三相点(温度)
- 39.26 °C
- 临界点(温度)
- 1820 °C
- 临界点(压力)
- 1.6e+7 Pa
- 熔化热
- 0.02269783 eV 比较所有元素的熔化热 →
- 汽化热
- 0.71513707 eV 比较所有元素的汽化热 →
- 升华热
- 0.84987304 eV
- 原子化热
- 0.84987304 eV
- 原子化焓
- 0.8384723 eV
核性质
- 质子
- 37 比较所有元素的质子 →
- 中子
- 48 比较所有元素的中子 →
- 已知同位素
- 34 比较所有元素的已知同位素 →
- 稳定同位素
- 1 比较所有元素的稳定同位素 →
- 最稳定同位素
- Rb-85
- 发现年份
- 1861
丰度
- 丰度(地壳)
- 90 mg/kg 比较所有元素的丰度(地壳) →
- 丰度(海洋)
- 0.12 mg/L 比较所有元素的丰度(海洋) →
晶体结构
- 晶格常数a
- 559 pm
电子结构
- 各电子层电子数
- 2, 8, 18, 8, 1 比较所有元素的各电子层电子数 →
标识符
- CAS登记号
- 7440-17-7 比较所有元素的CAS登记号 →
- 谱项符号
- 2S1/2
- InChI
- InChI=1S/Rb
- InChI Key
- IGLNJRXAVVLDKE-UHFFFAOYSA-N
电子排布 实测值
Rb: 5s¹[Kr] 5s¹1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 5s¹原子模型
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
同位素分布
| 质量数 | 原子质量(u) | 天然丰度 | 半衰期 |
|---|---|---|---|
| 85 稳定 | 84.9117897379 ± 0.0000000054 | 72.1700% | 稳定 |
物相 / 状态
原因: 低于熔点(39.31 °C)14.3 °C
示意图,未按比例绘制
相变点
相变能
在熔点熔化1 mol物质所需的能量
在沸点汽化1 mol物质所需的能量
在升华点升华1 mol物质所需的能量
密度
标准条件下
标准条件下
高级
原子光谱
已显示10项,共37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 |
|---|---|---|---|---|
| Rb I | 0 | 213 | 40 | 213 |
| Rb II | +1 | 699 | 49 | 602 |
| Rb III | +2 | 232 | 0 | 230 |
| Rb IV | +3 | 573 | 0 | 573 |
| Rb V | +4 | 34 | 13 | 34 |
| Rb VI | +5 | 34 | 32 | 34 |
| Rb VII | +6 | 26 | 10 | 26 |
| Rb VIII | +7 | 34 | 26 | 34 |
| Rb IX | +8 | 40 | 17 | 40 |
| Rb X | +9 | 64 | 29 | 64 |
收录能级 ?
| 离子 | 电荷 | 能级 |
|---|---|---|
| Rb I | 0 | 240 |
| Rb II | +1 | 166 |
| Rb III | +2 | 92 |
| Rb IV | +3 | 131 |
| Rb V | +4 | 21 |
| Rb VI | +5 | 20 |
| Rb VII | +6 | 21 |
| Rb VIII | +7 | 25 |
| Rb IX | +8 | 37 |
| Rb X | +9 | 41 |
离子半径
| 电荷 | 配位 | 自旋 | 半径 |
|---|---|---|---|
| +1 | 6 | 暂无 | 152 pm |
| +1 | 7 | 暂无 | 156 pm |
| +1 | 8 | 暂无 | 161 pm |
| +1 | 9 | 暂无 | 163 pm |
| +1 | 10 | 暂无 | 166 pm |
| +1 | 11 | 暂无 | 169 pm |
| +1 | 12 | 暂无 | 172 pm |
| +1 | 14 | 暂无 | 183 pm |
化合物
同位素 (1)
Twenty four isotopes of rubidium are known. Naturally occurring rubidium is made of two isotopes, 85Rb and 87Rb. Rubidium-87 is present to the extent of 27.85% in natural rubidium and is a beta emitter with a half-life of 4.9 x 1010 years. Ordinary rubidium is sufficiently radioactive to expose a photographic film in about 30 to 60 days. Rubidium forms four oxides: Rb2O, Rb2O2, Rb2O3, Rb2O4.
| 质量数 | 原子质量(u) | 天然丰度 | 半衰期 | 衰变方式 | |
|---|---|---|---|---|---|
| 85 稳定 | 84.9117897379 ± 0.0000000054 | 72.1700% ± 0.0200% | 稳定 | stable |
谱线
已显示50项,共202项。 默认仅显示具有实测强度的谱线。
| 波长(nm) | 强度 | 电离级 | 类型 | 跃迁 | 准确度 | 来源 | |
|---|---|---|---|---|---|---|---|
| 424.439 nm | 90000 | Rb II | emission | 4p5.(2P*<3/2>).5s 2[3/2]* → 4p5.(2P*<3/2>).5p 2[5/2] | 实测值 | NIST | |
| 477.5954 nm | 30000 | Rb II | emission | 4p5.(2P*<3/2>).5s 2[3/2]* → 4p5.(2P*<3/2>).5p 2[1/2] | 实测值 | NIST | |
| 394.051 nm | 25000 | Rb II | emission | 4p5.(2P*<3/2>).5s 2[3/2]* → 4p5.(2P*<3/2>).5p 2[3/2] | 实测值 | NIST | |
| 457.1765 nm | 20000 | Rb II | emission | 4p5.(2P*<3/2>).5s 2[3/2]* → 4p5.(2P*<3/2>).5p 2[5/2] | 实测值 | NIST | |
| 427.3141 nm | 15000 | Rb II | emission | 4p5.(2P*<3/2>).5s 2[3/2]* → 4p5.(2P*<3/2>).5p 2[5/2] | 实测值 | NIST | |
| 464.8557 nm | 10000 | Rb II | emission | 4p5.4d 3P* → 4p5.(2P*<1/2>).5p 2[3/2] | 实测值 | NIST | |
| 515.2081 nm | 10000 | Rb II | emission | 4p5.(2P*<3/2>).5s 2[3/2]* → 4p5.(2P*<3/2>).5p 2[1/2] | 实测值 | NIST | |
| 645.833 nm | 10000 | Rb II | emission | 4p5.(2P*<1/2>).5s 2[1/2]* → 4p5.(2P*<3/2>).5p 2[1/2] | 实测值 | NIST | |
| 552.2776 nm | 5000 | Rb II | emission | 4p5.(2P*<1/2>).5s 2[1/2]* → 4p5.(2P*<3/2>).5p 2[3/2] | 实测值 | NIST | |
| 656.0799 nm | 5000 | Rb II | emission | 4p5.4d 3F* → 4p5.(2P*<1/2>).5p 2[3/2] | 实测值 | NIST | |
| 419.3079 nm | 3500 | Rb II | emission | 4p5.(2P*<3/2>).5s 2[3/2]* → 4p5.(2P*<3/2>).5p 2[3/2] | 实测值 | NIST | |
| 453.0333 nm | 3000 | Rb II | emission | 4p5.4d 3P* → 4p5.(2P*<1/2>).5p 2[1/2] | 实测值 | NIST | |
| 380.1896 nm | 2500 | Rb II | emission | 4p5.(2P*<1/2>).5s 2[1/2]* → 4p5.(2P*<1/2>).5p 2[1/2] | 实测值 | NIST | |
| 437.7123 nm | 2500 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[5/2] → 4p5.(2P*<3/2>).6s 2[3/2]* | 实测值 | NIST | |
| 402.9485 nm | 1700 | Rb II | emission | 4p5.(2P*<3/2>).5s 2[3/2]* → 4p5.(2P*<3/2>).5p 2[3/2] | 实测值 | NIST | |
| 429.3971 nm | 1500 | Rb II | emission | 4p5.(2P*<3/2>).5s 2[3/2]* → 4p5.(2P*<3/2>).5p 2[3/2] | 实测值 | NIST | |
| 382.66591 nm | 1000 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[3/2] → 4p5.(2P*<3/2>).5d 2[3/2]* | 实测值 | NIST | |
| 420.18053 nm | 1000 | Rb I | emission | 4p6.5s 2S → 4p6.6p 2P* | 实测值 | NIST | |
| 434.6961 nm | 1000 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[5/2] → 4p5.(2P*<3/2>).6s 2[3/2]* | 实测值 | NIST | |
| 446.9475 nm | 1000 | Rb II | emission | 4p5.(2P*<1/2>).5p 2[3/2] → 4p5.(2P*<1/2>).6s 2[1/2]* | 实测值 | NIST | |
| 473.0454 nm | 1000 | Rb II | emission | 4p5.4d 3P* → 4p5.(2P*<1/2>).5p 2[1/2] | 实测值 | NIST | |
| 475.5304 nm | 1000 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[3/2] → 4p5.(2P*<3/2>).6s 2[3/2]* | 实测值 | NIST | |
| 655.5619 nm | 1000 | Rb II | emission | 4p5.4d 3P* → 4p5.(2P*<3/2>).5p 2[3/2] | 实测值 | NIST | |
| 451.90262 nm | 700 | Rb II | emission | 4p5.4d 1P* → 4p5.(2P*<3/2>).4f 2[3/2] | 实测值 | NIST | |
| 392.22011 nm | 500 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[3/2] → 4p5.(2P*<3/2>).5d 2[1/2]* | 实测值 | NIST | |
| 421.5539 nm | 500 | Rb I | emission | 4p6.5s 2S → 4p6.6p 2P* | 实测值 | NIST | |
| 426.6584 nm | 500 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[5/2] → 4p5.(2P*<3/2>).6s 2[3/2]* | 实测值 | NIST | |
| 465.9284 nm | 500 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[3/2] → 4p5.(2P*<3/2>).6s 2[3/2]* | 实测值 | NIST | |
| 551.2542 nm | 500 | Rb II | emission | 4p5.4d 3F* → 4p5.(2P*<1/2>).5p 2[3/2] | 实测值 | NIST | |
| 386.07454 nm | 450 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[1/2] → 4p5.(2P*<3/2>).6s 2[3/2]* | 实测值 | NIST | |
| 454.0732 nm | 400 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[3/2] → 4p5.(2P*<3/2>).6s 2[3/2]* | 实测值 | NIST | |
| 444.00924 nm | 300 | Rb II | emission | 4p5.4d 1P* → 4p5.(2P*<3/2>).4f 2[5/2] | 实测值 | NIST | |
| 516.4575 nm | 300 | Rb II | emission | 4p5.(2P*<1/2>).5s 2[1/2]* → 4p5.(2P*<3/2>).5p 2[3/2] | 实测值 | NIST | |
| 626.94 nm | 300 | Rb II | emission | 4p5.(2P*<3/2>).4f 2[9/2] → 4p5.(2P*<3/2>).6g 2[11/2]* | 实测值 | NIST | |
| 390.7292 nm | 250 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[3/2] → 4p5.(2P*<3/2>).5d 2[1/2]* | 实测值 | NIST | |
| 542.244 nm | 250 | Rb II | emission | 4p5.4d 1P* → 4p5.(2P*<3/2>).6p 2[3/2] | 实测值 | NIST | |
| 527.0514 nm | 200 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[1/2] → 4p5.(2P*<3/2>).6s 2[3/2]* | 实测值 | NIST | |
| 573.9645 nm | 200 | Rb II | emission | 4p5.(2P*<3/2>).5d 2[7/2]* → 4p5.(2P*<3/2>).5f 2[9/2] | 实测值 | NIST | |
| 613.5268 nm | 200 | Rb II | emission | 4p5.(2P*<3/2>).5d 2[5/2]* → 4p5.(2P*<3/2>).5f 2[7/2] | 实测值 | NIST | |
| 383.78512 nm | 175 | Rb II | emission | 4p5.(2P*<3/2>).5p 2[3/2] → 4p5.(2P*<3/2>).5d 2[1/2]* | 实测值 | NIST | |
| 740.8171 nm | 150 | Rb I | emission | 4p6.5p 2P* → 4p6.7s 2S | 实测值 | NIST | |
| 550.0635 nm | 100 | Rb II | emission | 4p5.(2P*<3/2>).6p 2[5/2] → 4p5.(2P*<3/2>).7d 2[7/2]* | 实测值 | NIST | |
| 627.5697 nm | 100 | Rb II | emission | 4p5.(2P*<3/2>).4f 2[9/2] → 4p5.(2P*<3/2>).6g 2[11/2]* | 实测值 | NIST | |
| 451.9884 nm | 75 | Rb II | emission | 4p5.(2P*<3/2>).5d 2[5/2]* → 4p5.(2P*<3/2>).6f 2[7/2] | 实测值 | NIST | |
| 459.989 nm | 75 | Rb II | emission | 4p5.(2P*<3/2>).5d 2[5/2]* → 4p5.(2P*<3/2>).6f 2[7/2] | 实测值 | NIST | |
| 543.1528 nm | 75 | Rb I | emission | 4p6.5p 2P* → 4p6.8d 2D | 实测值 | NIST | |
| 589.308 nm | 75 | Rb II | emission | 4p5.(2P*<3/2>).5d 2[7/2]* → 4p5.(2P*<3/2>).5f 2[9/2] | 实测值 | NIST | |
| 607.0751 nm | 75 | Rb I | emission | 4p6.5p 2P* → 4p6.8s 2S | 实测值 | NIST | |
| 614.0319 nm | 75 | Rb II | emission | 4p5.4d 3F* → 4p5.(2P*<1/2>).5p 2[3/2] | 实测值 | NIST | |
| 572.4125 nm | 60 | Rb I | emission | 4p6.5p 2P* → 4p6.7d 2D | 实测值 | NIST |
扩展性质
共价半径(扩展)
- 共价半径(Pyykkö)
- 210 pm
- 共价半径(Pyykkö,双键)
- 202 pm
- 共价半径(Bragg)
- 225 pm
范德华半径
- Truhlar
- 303 pm
- Batsanov
- 290 pm
- Alvarez
- 321 pm
- UFF
- 411.4 pm
- MM3
- 325 pm
原子半径与金属半径
- 原子半径(Rahm)
- 240 pm
- 金属半径(C12)
- 248 pm
编号标度
- Mendeleev
- 4
- Pettifor
- 9
- Glawe
- 9
电负性标度
- Ghosh
- 0
- Miedema
- 2
- Gunnarsson–Lundqvist
- 2
- Robles–Bartolotti
- 1
极化率与色散
- 偶极极化率
- 319.8 a.u.
- 偶极极化率(不确定度)
- 0.3 a.u.
- C₆
- 4769 Ha·Bohr6
- C₆ (Gould–Bučko)
- 4660 Ha·Bohr6
Miedema参数
- Miedema摩尔体积
- 56.07 cm3/mol
- Miedema电子密度
- 0
相变与同素异形体
| 熔点 | 312.45 K |
| 沸点 | 961.15 K |
| 临界点(温度) | 2093.15 K |
| 临界点(压力) | 16 MPa |
| 三相点(温度) | 312.41 K |
氧化态分类
高级参考数据
屏蔽常数 (9)
| n | 轨道 | σ |
|---|---|---|
| 1 | s | 0.7922 |
| 2 | p | 3.9612 |
| 2 | s | 9.8432 |
| 3 | d | 15.3208 |
| 3 | p | 15.6967 |
| 3 | s | 15.1573 |
| 4 | p | 26.1192 |
| 4 | s | 24.612 |
| 5 | s | 32.0155 |
晶体半径详情 (8)
| 电荷 | CN | 自旋 | rcrystal (pm) | 来源 |
|---|---|---|---|---|
| 1 | VI | 166 | ||
| 1 | VII | 170 | ||
| 1 | VIII | 175 | ||
| 1 | IX | 177 | estimated, | |
| 1 | X | 180 | ||
| 1 | XI | 183 | ||
| 1 | XII | 186 | ||
| 1 | XIV | 197 |
同位素衰变方式 (61)
| 同位素 | 模式 | 强度 |
|---|---|---|
| 71 | p | — |
| 72 | p | — |
| 73 | B+ | — |
| 73 | p | 100% |
| 74 | B+ | 100% |
| 74 | B+p | — |
| 75 | B+ | 100% |
| 76 | B+ | 100% |
| 76 | B+A | 3.8% |
| 77 | B+ | 100% |
X射线散射因子 (508)
| 能量 (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 0.06968 |
| 10.1617 | — | 0.07104 |
| 10.3261 | — | 0.07253 |
| 10.4931 | — | 0.07441 |
| 10.6628 | — | 0.07635 |
| 10.8353 | — | 0.07833 |
| 11.0106 | — | 0.08037 |
| 11.1886 | — | 0.083 |
| 11.3696 | — | 0.08599 |
| 11.5535 | — | 0.0891 |
补充数据
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
9.0×101 milligrams per kilogram
参考文献 (1)
- [5] Rubidium https://education.jlab.org/itselemental/ele037.html
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
1.2×10-1 milligrams per liter
参考文献 (1)
- [5] Rubidium https://education.jlab.org/itselemental/ele037.html
Sources
Sources of this element.
The element is much more abundant than was thought several years ago. It is now considered to be the 16th most abundant element in the earth's crust. Rubidium occurs in pollucite, leucite, and zinnwaldite, which contains traces up to 1%, in the form of the oxide. It is found in lepidolite to the extent of about 1.5%, and is recovered commercially from this source. Potassium minerals, such as those found at Searles Lake, California, and potassium chloride recovered from the brines in Michigan also contain the element and are commercial sources. It is also found along with cesium in the extensive deposits of pollucite at Bernic Lake, Manitoba.
参考文献 (1)
- [6] Rubidium https://periodic.lanl.gov/37.shtml
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 Rubidium.
The element property data was retrieved from publications.

