Thorium (Th)
actinideSolid
標準原子量
232.0377 u電子配置
[Rn] 7s2 6d2融点
1749.85 °C沸点
4787.85 °C密度
1.172e+4 kg/m³酸化数
−1, +1, +2, +3, +4電気陰性度(Pauling)
1.3第1イオン化エネルギー
6.3067 eV発見年
1828原子半径
180 pm詳細
Thorium is a naturally occurring actinide metal with atomic number 90. It is weakly radioactive and is found mainly as ²³²Th, an isotope with a very long half-life. Chemically it is dominated by the +4 oxidation state and often resembles the tetravalent lanthanides more than uranium or plutonium. Its main technological interest is as a fertile nuclear material that can be converted to fissile ²³³U in reactors.
When pure, thorium is a silvery-white metal that is air-stable and retains its luster for several months. When contaminated with the oxide, thorium slowly tarnishes in air, becoming gray and finally black. The physical properties of thorium are greatly influenced by the degree of contamination with the oxide. The purest specimens often contain several tenths of a percent of the oxide. High-purity thorium has been made. Pure thorium is soft, very ductile, and can be cold-rolled, swaged, and drawn. Thorium is dimorphic, changing at 1400°C from a cubic to a body-centered cubic structure. Thorium oxide has a melting point of 3300°C, which is the highest of all oxides. Only a few elements, such as tungsten, and a few compounds, such as tantalum carbide, have higher melting points. Thorium is slowly attacked by water, but does not dissolve readily in most common acids, except hydrochloric. Powdered thorium metal is often pyrophoric and should be handled carefully. When heated in air, thorium turnings ignite and burn brilliantly with a white light.
The name derives from Thor, the Scandinavian god of thunder. It was discovered in the mineral thorite (ThSiO4) by the Swedish chemist Jöns Jacob Berzelius in 1828. Thorium was first isolated by the chemists D. Lely, Jr. and L. Hamburger in 1914.
Thorium was discovered by Jöns Jacob Berzelius, a Swedish chemist, in 1828. He discovered it in a sample of a mineral that was given to him by the Reverend Has Morten Thrane Esmark, who suspected that it contained an unknown substance. Esmark's mineral is now known as thorite (ThSiO4). Thorium makes up about 0.0007% of the earth's crust and is primarily obtained from thorite, thorianite (ThO2) and monazite ((Ce, La, Th, Nd, Y)PO4).
Morten Esmark found a black mineral on Løvøya island, Norway and gave a sample to his father Jens Esmark, a noted mineralogist. The elder Esmark was not able to identify it and sent a sample to Swedish chemist Jöns Jakob Berzelius for examination in 1828. In 1829 Berzelius determined that it contained a new element, which he named thorium after Thor, the Norse god of thunder. The metal had no practical uses until 1885 when Carl Auer von Welsbach invented the gas mantle. Thorium was first observed to be radioactive in 1898, independently, by Polish-French physicist Marie Curie and German chemist Gerhard Carl Schmidt. Between 1900 and 1903, Ernest Rutherford and Frederick Soddy showed how thorium decayed at a fixed rate over time into a series of other elements. This observation led to the identification of half-life as one of the outcomes of the alpha particle experiments that led to their disintegration theory of radioactivity. The crystal bar process (or "iodide process") was discovered by Anton Eduard van Arkel and Jan Hendrik de Boer in 1925 to produce high-purity metallic thorium. Because of health concerns, the thorium in classic lantern mantles has been replaced by rare-earth elements that also produce intense light without the radioactivity.
Pure thorium is a silvery, soft, ductile metal when freshly prepared. It tarnishes slowly in air, forming a protective oxide film, and finely divided material can be more reactive. Macroscopic metal is uncommon outside specialized laboratories and nuclear materials work.
Thorium dioxide has been used in high-temperature ceramics, laboratory crucibles, optical glass, and older incandescent gas mantles, although most such uses have declined because of radioactivity controls. Small additions of thorium to tungsten improved electron emission in thoriated welding electrodes and some vacuum-tube components. Thorium is also studied as a fertile fuel material in nuclear systems, but it is not a widely deployed commercial reactor fuel.
Thorium is used as an alloying agent to improve magnesium's strength at high temperatures. Thorium is also used to coat tungsten filaments used in electronic devices, such at television sets. When bombarded with neutrons, thorium-232 becomes thorium-233, which eventually decays into uranium-233 through a series of beta decays. Uranium-233 is a fissionable material and can be used as a nuclear fuel.
Thorium oxide (ThO2), one of thorium's compounds, has many uses. It is primarily used in a type of lantern mantel known as a Welsbach mantle. This mantle, which also contains about 1% cerium oxide, glows with a bright white light when it is heated in a gas flame. Thorium oxide has a very high melting point, about 3300°C, and is used to make high temperature crucibles. Thorium oxide is also used to make glass with a high index of refraction that is used to make high quality camera lenses. Thorium oxide is used as a catalyst in the production of sulfuric acid (H2SO4), in the cracking of petroleum products and in the conversion of ammonia (NH3) to nitric acid (HNO3).
Thorium's most stable isotope, thorium-232, has a half-life of about 14,050,000,000 years. It decays into radium-228 through alpha decay or decays through spontaneous fission.
The principal historic use of thorium has been in the preparation of the Welsbach mantle, used for portable gaslights. These mantles, consisting of thorium oxide with about 1% cerium oxide and other ingredients, glow with a dazzling light when heated in a gas flame. Thorium is an important alloying element in magnesium, imparting high strength and creep resistance at elevated temperatures. Because thorium has a low work-function and high electron emission, it is used to coat tungsten wire used in electronic equipment. The oxide is also used to control the grain size of tungsten used for electric lamps; it is also used for high-temperature laboratory crucibles. Glasses containing thorium oxide have a high refractive index and low dispersion. Consequently, they find application in high quality lenses for cameras and scientific instruments. Thorium oxide has also found use as a catalyst in the conversion of ammonia to nitric acid, in petroleum cracking, and in producing sulfuric acid. Thorium metal is a source of nuclear power. There is probably more energy available for use from thorium in the minerals of the earth's crust than from both uranium and fossil fuels. Any sizable demand from thorium as a nuclear fuel is still several years in the future. Work has been done in developing thorium cycle converter-reactor systems. Several prototypes, including the HTGR (high-temperature gas-cooled reactor) and MSRE (molten salt converter reactor experiment), have operated. While the HTGR reactors are efficient, they are not expected to become important commercially for many years because of certain operating difficulties.
Isotopes in Earth/Planetary Science
234Th (with a half-life of 24 days) has been used as a tracer for estimating the flux of organic carbon in the ocean (Fig. IUPAC.90.1) [589] B. Ghaleb. IOP Conf. Ser. Earth Environ. Sci.5, (2009)., [590] J. K. Cochran, K. O. Buesseler, M. P. Bacon, H. W. Wang, D. J. Hirschberg, L. Ball, J. Andrews, G. Crossin, A. Fleer. Deep-Sea Res. II47, 3451 (2000).. 234Th has been used for estimating the residence time of suspended particulate matter (SPM) in water columns [589] B. Ghaleb. IOP Conf. Ser. Earth Environ. Sci.5, (2009)..
Isotopes in Geochronology
The decay of 232Th (with a half-life of 1.40×1010 years) to 208Pb is used to date rocks based on the accumulation of the stable daughter product 208Pb. The half-lives of the isotopes between the parent radionuclide 232Th and stable endpoint 208Pb all have much shorter half-lives than thorium. Therefore, the amount of 208Pb that accumulates in a sample is determined primarily by the amount of 232Th parent radionuclide present when the mineral was formed and the time that has elapsed since the mineral solidified [591] R. R. Parrish, S. R. Noble. Rev. Mineral. Geochem.53, 183 (2003)..
Another dating method, the 230Th/ 234U method, is based on the hypothesis that the sample contains uranium, but no 230Th at the time of its formation. Then, the age of the specimen is determined mainly by the amount of 230Th in the specimen. Reliable ages with this method range from several thousand to approximately 350 thousand years [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 Industry
The most precise time and frequency measurements are performed with optical atomic clocks that use as a frequency standard the optical frequency generated as electrons change energy levels. It has been proposed that a nuclear clock, using a nuclear transition could outperform an electron transition. 229mTh, with a half-life of 13.9 h, has been confirmed as a possible candidate for a nuclear clock [592] L. von der Wense, B. Seiferle, M. Laatiaoui, J. B. Neumayr, H. J. Maier, H. F. Wirth, C. Mokry, J. Runke, K. Eberhardt, C. E. Düllmann, N. G. Trautmann, P. G. Thirolf. Nature533, 47 (2016).. The m in 229mTh indicates a metastable state of the isotope. The further development of a nuclear frequency standard will require more precise determinations of the energy and half-life of the isomer.
Thorium chemistry is strongly centered on Th⁴⁺. Thorium dioxide, ThO₂, is a very refractory oxide with high melting point and low solubility, important in ceramics and nuclear fuel research. Thorium nitrate, Th(NO₃)₄, was historically used to impregnate gas mantles. Thorium tetrafluoride, ThF₄, and thorium tetrachloride, ThCl₄, are representative halides and intermediates in metal preparation or molten-salt chemistry. Lower oxidation states are uncommon and generally require strongly reducing conditions.
See more information at the Thorium compound page.
Thorium is an alpha-emitting radioactive element, and the hazard depends on isotope, chemical form, and route of exposure. External radiation from bulk ²³²Th is usually limited, but inhaled or ingested dust can deliver internal alpha dose, especially as decay products accumulate. Thorium compounds are also heavy-metal toxicants. Machining, powder handling, and legacy mantles or electrodes require controls for contamination and radioactive waste.
Thorium occurs naturally in trace to minor amounts in many rocks and soils, chiefly in resistant minerals such as monazite and thorite. Th⁴⁺ is relatively immobile under many surface conditions because it hydrolyzes strongly and binds to oxides, phosphates, and organic matter. Weathering tends to concentrate thorium in heavy-mineral sands and sediments rather than in groundwater. It has no known biological function.
Thorium is not traded as a major commodity metal. It is obtained mainly as a by-product or potential by-product of rare-earth and heavy-mineral processing, especially from monazite concentrates, where radioactivity can complicate handling and permitting. Demand is limited because many former applications have been replaced by nonradioactive materials. Nuclear-fuel interest has led to research stocks and pilot-scale processing, but no large, mature thorium fuel market exists. Recycling is mostly relevant to controlled industrial or nuclear materials rather than general commerce.
Thorium-232 is a primordial nuclide, having existed in its current form for over 4.5 billion years, a half-life is comparable to the age of the Universe and thus predating the formation of the Earth. Thorium was forged in the cores of dying stars through the r-process and scattered across the galaxy by supernovas. Thorium is found in small amounts in most rocks and soils. Soil commonly contains an average of around 6 parts per million (ppm) of thorium. Thorium occurs in several minerals including thorite (ThSiO4), thorianite (ThO2 + UO2) and monazite. Thorianite is a rare mineral and may contain up to about 12% thorium oxide. Monazite contains 2.5% thorium, allanite has 0.1 to 2% thorium and zircon can have up to 0.4% thorium.[66] Thorium-containing minerals occur on all continents. Thorium is now thought to be about three times as abundant as uranium and about as abundant as lead or molybdenum. Thorium is recovered commercially from the mineral monazite, which contains from 3 to 9% ThO2 along with rare-earth minerals.
Thorium is produced in the rapid neutron-capture process and is one of the longest-lived naturally occurring radioactive elements heavier than bismuth. Its abundance in the Solar System is low, but it is measurable in meteorites, lunar samples, and stellar spectra. Ratios involving thorium and other r-process elements are used in cosmochronology because ²³²Th decays on a timescale comparable to the age of the universe.
- Nearly all natural thorium is ²³²Th, with a half-life of about 14 billion years.
- Thorium dioxide, ThO₂, is among the most refractory known oxides.
- Old gas mantles could contain enough thorium to be measurably radioactive.
- Thorium metal powder can present both radiological and pyrophoric hazards.
- The thorium fuel cycle breeds fissile ²³³U rather than using thorium itself as a fissile nuclide.
画像
性質
物理的性質
- 原子半径(経験値)
- 180 pm 全元素の原子半径(経験値)を比較 →
- 共有結合半径
- 206 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
- 237 pm 全元素のファンデルワールス半径を比較 →
- 密度
- 1.172 × 104 kg/m³ 全元素の密度を比較 →
- モル体積
- 0.0198 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
- 1749.85 °C 全元素の融点を比較 →
- 沸点
- 4787.85 °C 全元素の沸点を比較 →
- 比熱容量
- 0.118 J/(g·K) 全元素の比熱容量を比較 →
- モル熱容量
- 27.32 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)
- 1.3 全元素の電気陰性度(Pauling)を比較 →
- 電子親和力
- 0.607 eV
- 第1イオン化エネルギー
- 6.3067 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
- 12.100042 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
- 18.320063 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
- 28.648099 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
- 58.0002 eV 全元素の第5イオン化エネルギーを比較 →
- 酸化数
- −1, +1, +2, +3, +4 全元素の酸化数を比較 →
- 価電子
- 3 全元素の価電子を比較 →
- 電子配置
- [Rn] 7s2 6d2
熱力学的性質
- 融解熱
- 0.16696896 eV 全元素の融解熱を比較 →
- 蒸発熱
- 5.327253 eV 全元素の蒸発熱を比較 →
- 昇華熱
- 5.938747 eV
- 原子化熱
- 5.938747 eV
- 原子化エンタルピー
- 6.239312 eV
原子核
- 陽子数
- 90 全元素の陽子数を比較 →
- 中性子数
- 142 全元素の中性子数を比較 →
- 既知の同位体
- 32 全元素の既知の同位体を比較 →
- 安定同位体
- 0 全元素の安定同位体を比較 →
- 最も安定な同位体
- Th-232
- 発見年
- 1828
存在度
- 存在度(地殻)
- 9.6 mg/kg 全元素の存在度(地殻)を比較 →
- 存在度(海洋)
- 1 × 10−6 mg/L 全元素の存在度(海洋)を比較 →
結晶構造
- 格子定数a
- 508 pm
電子構造
- 各電子殻の電子数
- 2, 8, 18, 32, 18, 10, 2 全元素の各電子殻の電子数を比較 →
識別子
- CAS登録番号
- 7440-29-1 全元素のCAS登録番号を比較 →
- 項記号
- 3F2
- InChI
- InChI=1S/Th
- InChI Key
- ZSLUVFAKFWKJRC-UHFFFAOYSA-N
電子配置 測定値
Th: 6d² 7s²[Rn] 6d² 7s²1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹⁰ 5s² 5p⁶ 4f¹⁴ 5d¹⁰ 6s² 6p⁶ 6d² 7s²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
安定同位体はありません。
| 質量数 | 原子質量(u) | 天然存在比 | 半減期 |
|---|---|---|---|
| 223 放射性 | 223.0208119 ± 0.0000099 | データなし | 600 ms |
| 217 放射性 | 217.013117 ± 0.000022 | データなし | 248 us |
| 213 放射性 | 213.013009 ± 0.000076 | データなし | 144 ms |
| 218 放射性 | 218.013276 ± 0.000011 | データなし | 122 ns |
| 214 放射性 | 214.0115 ± 0.000017 | データなし | 87 ms |
相/状態
理由: 融点(1749.85 °C)より1724.8 °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
原子スペクトル
全90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 |
|---|---|---|---|---|
| Th I | 0 | 13387 | 0 | 13387 |
| Th II | +1 | 6502 | 0 | 6502 |
| Th III | +2 | 227 | 0 | 227 |
| Th IV | +3 | 27 | 0 | 0 |
準位データの収録状況 ?
| イオン | 電荷 | 準位 |
|---|---|---|
| Th I | 0 | 788 |
| Th II | +1 | 517 |
| Th III | +2 | 176 |
| Th IV | +3 | 2 |
| Th V | +4 | 2 |
| Th VI | +5 | 2 |
| Th VII | +6 | 2 |
| Th VIII | +7 | 2 |
| Th IX | +8 | 2 |
| Th X | +9 | 2 |
イオン半径
| 電荷 | 配位 | スピン | 半径 |
|---|---|---|---|
| +3 | 9 | データなし | 120.9 pm |
| +4 | 6 | データなし | 94 pm |
| +4 | 8 | データなし | 105 pm |
| +4 | 9 | データなし | 109.00000000000001 pm |
| +4 | 10 | データなし | 112.99999999999999 pm |
| +4 | 11 | データなし | 118 pm |
| +4 | 12 | データなし | 121 pm |
化合物
同位体 (5)
Twenty-seven thorium radioisotopes have been characterized, with a range in atomic weight from 210 to 236. All are unstable with the most stable being 232Th with a half-life of 14.05 billion years. Thorium-232 represents all but a trace of naturally occurring thorium. It is an alpha emitter and goes through six alpha and four beta decay steps before becoming the stable isotope 208Pb. 232Th is sufficiently radioactive to expose a photographic plate in a few hours. Other isotopes of thorium are short-lived intermediates in the decay chains of higher elements, and only found in trace amounts. The longer-lived of these trace isotopes include: 230Th with a half-life of 75,380 years which is a daughter product of 238U decay; 229Th with a half-life of 7340 years and 228Th with a half-life of 1.92 years. All of the remaining radioactive isotopes have half-lives that are less than thirty days and the majority of these have half-lives less than ten minutes. Much of the internal heat the earth produces has been attributed to thorium and uranium.
| 質量数 | 原子質量(u) | 天然存在比 | 半減期 | 崩壊形式 | |
|---|---|---|---|---|---|
| 223 放射性 | 223.0208119 ± 0.0000099 | データなし | 600 ms | α =100% | |
| 217 放射性 | 217.013117 ± 0.000022 | データなし | 248 us | α =100% | |
| 213 放射性 | 213.013009 ± 0.000076 | データなし | 144 ms | α ≈100%β+ ? | |
| 218 放射性 | 218.013276 ± 0.000011 | データなし | 122 ns | α =100% | |
| 214 放射性 | 214.0115 ± 0.000017 | データなし | 87 ms | α ≈100%β+ ? |
スペクトル線
全9955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 | |
|---|---|---|---|---|---|---|---|
| 576.055056 nm | 53000 | Th I | emission | 6d2.7s2 3F → 5f.6d.7s2 3D* | 測定値 | NIST | |
| 645.728238 nm | 44000 | Th I | emission | 5f.6d.7s2 3H* → 5f.6d.7s.7p 5I | 測定値 | NIST | |
| 395.039509 nm | 42000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 618.262159 nm | 38000 | Th I | emission | 6d2.7s2 3F → 6d.7s2.7p 3P* | 測定値 | NIST | |
| 658.390575 nm | 32000 | Th I | emission | 6d2.7s2 3F → 6d.7s2.7p 3F* | 測定値 | NIST | |
| 572.018265 nm | 31000 | Th I | emission | 6d2.7s2 → 5f.6d.7s2 3D* | 測定値 | NIST | |
| 698.965521 nm | 31000 | Th I | emission | 5f.6d.7s2 3H* → 5f.6d.7s.7p 5I | 測定値 | NIST | |
| 716.889496 nm | 30000 | Th I | emission | 6d2.7s2 3F → 6d.7s2.7p 3F* | 測定値 | NIST | |
| 449.3333668 nm | 28000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 658.853947 nm | 26000 | Th I | emission | 6d2.7s2 3P → 6d.7s2.7p 3P* | 測定値 | NIST | |
| 691.12262 nm | 25000 | Th I | emission | 6d2.7s2 3F → 6d2.7s.7p 5G* | 測定値 | NIST | |
| 380.307494 nm | 24000 | Th I | emission | 6d2.7s2 3F → 6d2.7s.7p 3D* | 測定値 | NIST | |
| 403.6047645 nm | 24000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 659.148431 nm | 21000 | Th I | emission | 6d2.7s2 3F → 6d2.7s.7p 5G* | 測定値 | NIST | |
| 401.912876 nm | 20000 | Th II | emission | 6d.7s2 2D → 6d.7s.(3D).7p * | 測定値 | NIST | |
| 558.702644 nm | 20000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 411.2754309 nm | 18000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 470.398977 nm | 18000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 580.414105 nm | 18000 | Th I | emission | 6d2.7s2 3F → 6d2.7s.7p 5F* | 測定値 | NIST | |
| 616.982198 nm | 18000 | Th I | emission | 6d2.7s2 3F → 5f.6d.7s2 3D* | 測定値 | NIST | |
| 597.366467 nm | 17000 | Th I | emission | 6d2.7s2 → 6d.7s2.7p 3P* | 測定値 | NIST | |
| 653.134169 nm | 17000 | Th I | emission | 6d3.(4F).7s 5F → 6d2.7s.7p 5P* | 測定値 | NIST | |
| 383.969505 nm | 16000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 421.092303 nm | 16000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 515.86042 nm | 16000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 620.349239 nm | 16000 | Th I | emission | 6d2.7s2 3F → 6d2.7s.7p 5F* | 測定値 | NIST | |
| 666.22685 nm | 16000 | Th I | emission | 6d3.(4F).7s 5F → 6d2.7s.7p 5P* | 測定値 | NIST | |
| 394.8030341 nm | 15000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 403.0842224 nm | 15000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 410.0341193 nm | 15000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 467.366094 nm | 15000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 506.797381 nm | 15000 | Th I | emission | 5f.6d.7s2 3H* | 測定値 | NIST | |
| 523.115956 nm | 15000 | Th I | emission | 6d2.7s2 3P → 6d2.7s.7p 5P* | 測定値 | NIST | |
| 634.285945 nm | 15000 | Th I | emission | 6d3.(4F).7s 5F → * | 測定値 | NIST | |
| 382.838452 nm | 14000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 472.3438197 nm | 14000 | Th I | emission | 6d2.7s2 3F → 5f.6d.7s2 3D* | 測定値 | NIST | |
| 553.926178 nm | 14000 | Th I | emission | 6d3.(4F).7s 5F → * | 測定値 | NIST | |
| 694.361046 nm | 14000 | Th I | emission | 6d3.(4F).7s 5F → * | 測定値 | NIST | |
| 720.80062 nm | 14000 | Th I | emission | 6d3.(4F).7s 5F → * | 測定値 | NIST | |
| 425.0314489 nm | 13000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 489.495493 nm | 13000 | Th I | emission | 6d2.7s2 3F → 6d.7s2.7p 3P* | 測定値 | NIST | |
| 387.382217 nm | 12000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 423.5463454 nm | 12000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 480.81337 nm | 12000 | Th I | emission | 6d2.7s2 3F → * | 測定値 | NIST | |
| 541.748576 nm | 12000 | Th I | emission | 6d2.7s2 → * | 測定値 | NIST | |
| 599.412865 nm | 12000 | Th I | emission | 6d2.7s2 3P → 6d.7s2.7p 3P* | 測定値 | NIST | |
| 659.393903 nm | 12000 | Th I | emission | 6d3.(4F).7s 5F → * | 測定値 | NIST | |
| 708.416896 nm | 12000 | Th I | emission | 6d3.(4F).7s 5F → * | 測定値 | NIST | |
| 738.550045 nm | 12000 | Th I | emission | 6d2.7s2 → 6d2.7s.7p 5F* | 測定値 | NIST | |
| 392.440084 nm | 11000 | Th I | emission | 6d2.7s2 → * | 測定値 | NIST |
詳細な性質
共有結合半径(詳細)
- 共有結合半径(Pyykkö)
- 175 pm
- 共有結合半径(Pyykkö、二重結合)
- 143 pm
- 共有結合半径(Pyykkö、三重結合)
- 136 pm
ファンデルワールス半径
- Batsanov
- 240 pm
- Alvarez
- 293 pm
- UFF
- 339.6 pm
- MM3
- 274 pm
原子半径と金属半径
- 原子半径(Rahm)
- 288 pm
番号付けの尺度
- Mendeleev
- 16
- Pettifor
- 47
- Glawe
- 34
電気陰性度の尺度
- Ghosh
- 0
- Miedema
- 3
分極率と分散
- 双極子分極率
- 217 a.u.
- 双極子分極率(不確かさ)
- 54 a.u.
ミーデマパラメータ
- ミーデマモル体積
- 19.8 cm3/mol
- ミーデマ電子密度
- 2
供給リスクと経済性
- 生産集中度
- 80
- 相対供給リスク
- 8
- 埋蔵量の分布
- 31
- 政治的安定性(最大生産国)
- 11
- 政治的安定性(最大埋蔵国)
- 57
相転移と同素体
| 融点 | 2023.15 K |
| 沸点 | 5058.15 K |
酸化数の分類
専門参考データ
結晶半径の詳細 (7)
| 電荷 | CN | スピン | rcrystal (pm) | 由来 |
|---|---|---|---|---|
| 4 | VI | 108 | calculated, | |
| 4 | VIII | 119 | from r^3 vs V plots, calculated, | |
| 4 | IX | 123 | ||
| 4 | X | 127 | estimated, | |
| 4 | XI | 132 | calculated, | |
| 4 | XII | 135 | calculated, | |
| 3 | IX | — | 134.9 |
同位体の崩壊形式 (52)
| 同位体 | モード | 強度 |
|---|---|---|
| 208 | A | 100% |
| 209 | A | — |
| 209 | B+ | — |
| 210 | A | 100% |
| 210 | B+ | — |
| 211 | A | 100% |
| 211 | B+ | — |
| 212 | A | 100% |
| 212 | B+ | — |
| 213 | A | 100% |
X線散乱因子 (516)
| エネルギー (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 3.14769 |
| 10.1617 | — | 3.1007 |
| 10.3261 | — | 3.05442 |
| 10.4931 | — | 3.00883 |
| 10.6628 | — | 2.96392 |
| 10.8353 | — | 2.91968 |
| 11.0106 | — | 2.87611 |
| 11.1886 | — | 2.83318 |
| 11.3696 | — | 2.79089 |
| 11.5535 | — | 2.74024 |
追加データ
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
9.6 milligrams per kilogram
参考文献 (1)
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
1×10-6 milligrams per liter
参考文献 (1)
Sources
Sources of this element.
Thorium-232 is a primordial nuclide, having existed in its current form for over 4.5 billion years, a half-life is comparable to the age of the Universe and thus predating the formation of the Earth. Thorium was forged in the cores of dying stars through the r-process and scattered across the galaxy by supernovas. Thorium is found in small amounts in most rocks and soils. Soil commonly contains an average of around 6 parts per million (ppm) of thorium. Thorium occurs in several minerals including thorite (ThSiO4), thorianite (ThO2 + UO2) and monazite. Thorianite is a rare mineral and may contain up to about 12% thorium oxide. Monazite contains 2.5% thorium, allanite has 0.1 to 2% thorium and zircon can have up to 0.4% thorium.[66] Thorium-containing minerals occur on all continents. Thorium is now thought to be about three times as abundant as uranium and about as abundant as lead or molybdenum. Thorium is recovered commercially from the mineral monazite, which contains from 3 to 9% ThO2 along with rare-earth minerals.
参考文献 (1)
- [6] Thorium https://periodic.lanl.gov/90.shtml
Production
Production of this element (from raw materials or other compounds containing the element).
Production
Several methods are available for producing thorium metal; it can be obtained by reducing thorium oxide with calcium, by electrolysis of anhydrous thorium chloride in a fused mixture of sodium and potassium chlorides, by calcium reduction of thorium tetrachloride mixed with anhydrous zinc chloride, and by reduction of thorium tetrachloride with an alkali metal.
参考文献 (1)
- [6] Thorium https://periodic.lanl.gov/90.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 Thorium.
The element property data was retrieved from publications.

