Yttrium (Y)
transition-metalSolid
标准原子量
88.90584 u电子排布
[Kr] 5s2 4d1熔点
1521.85 °C沸点
3344.85 °C密度
4470 kg/m³氧化态
0, +1, +2, +3电负性(鲍林)
1.22第一电离能
6.21726 eV发现年份
1794原子半径
180 pm详细信息
Yttrium is a silvery transition metal grouped with the rare-earth elements because it commonly occurs with lanthanides and forms predominantly trivalent cations. Its chemistry is close to the heavier lanthanides, especially holmium and erbium, rather than to scandium. Although not itself a lanthanide, yttrium is a key component of phosphors, ceramics, lasers, and high-temperature oxide materials.
Yttrium has a silver-metallic luster and is relatively stable in air. Turnings of the metal, however, ignite in air if their temperature exceeds 400°C. Finely divided yttrium is very unstable in air.
The name derives from the Swedish village of Ytterby where the mineral gadolinite was found. In 1794, the Finnish chemist Johan Gadolin discovered yttrium in the mineral ytterbite, which was later renamed gadolinite for Gadolin. Gadolin originally called the element ytterbium after ytterbite. The name was subsequently shortened to yttrium, and later another element was given the name ytterbium.
Yttrium was discovered by Johan Gadolin, a Finnish chemist, while analyzing the composition of the mineral gadolinite ((Ce, La, Nd, Y)2FeBe2Si2O10) in 1789. Gadolinite, which was named for Johan Gadolin, was discovered several years earlier in a quarry near the town of Ytterby, Sweden. Today, yttrium is primarily obtained through an ion exchange process from monazite sand ((Ce, La, Th, Nd, Y)PO4), a material rich in rare earth elements.
Namded after Ytterby, a village in Sweden near Vauxholm. Yttria earth containing yttrium was discovered by Gadolin in 1794. Ytterby is the site of a quarry which yielded many unusual minerals containing rare earths and other elements. This small town, near Stockholm, bears the honor of giving names to erbium, terbium, and ytterbium as well as yttrium.
In 1843 Mosander showed that yttira could be resolved into the oxides (or earths) of three elements. The name yttria was reserved for the most basic one; the others were named erbia and terbia.
Pure yttrium is a soft, silvery-white metal with a metallic luster. It is reasonably stable in dry air at room temperature because a thin oxide film forms, but finely divided metal is more reactive and can ignite when heated.
Yttrium is used mainly through its compounds and oxide ceramics. Yttrium oxide, Y₂O₃, is a host and stabilizer in red phosphors, optical ceramics, and refractory materials. Yttrium aluminum garnet, Y₃Al₅O₁₂, is the host crystal for Nd:YAG lasers. Yttria-stabilized zirconia is used in oxygen sensors, thermal-barrier coatings, and solid oxide fuel cells. Small additions of yttrium improve oxidation resistance and grain behavior in some alloys.
Although metallic yttrium is not widely used, several of its compounds are. Yttrium oxide (Y2O3) and yttrium orthovanadate (YVO4) are both combined with europium to produce the red phosphor used in color televisions. Garnets made from yttrium and iron (Y3Fe5O12) are used as microwave filters in microwave communications equipment. Garnets made from yttrium and aluminum (Y3Al5O12) are used in jewelry as simulated diamond.
Yttrium oxide is one of the most important compounds of yttrium and accounts for the largest use. It is widely used in making YVO4 europium, and Y2O3 europium phosphors to give the red color in color television tubes. Hundreds of thousands of pounds are now used in this application.
Yttrium oxide also is used to produce yttrium-iron-garnets, which are very effective microwave filters.
Yttrium iron, aluminum, and gadolinium garnets, with formulas such as Y3Fe5O12 and Y3Al5O12, have interesting magnetic properties. Yttrium iron garnet is also exceptionally efficient as both a transmitter and transducer of acoustic energy. Yttrium aluminum garnet, with a hardness of 8.5, is also finding use as a gemstone (simulated diamond).
Small amounts of yttrium (0.1 to 0.2%) can be used to reduce the grain size in chromium, molybdenum, zirconium, and titanium, and to increase strength of aluminum and magnesium alloys.
Alloys with other useful properties can be obtained by using yttrium as an additive. The metal can be used as a deoxidizer for vanadium and other nonferrous metals. The metal has a low cross section for nuclear capture. 90Y, one of the isotopes of yttrium, exists in equilibrium with its parent 90Sr, a product of nuclear explosions. Yttrium has been considered for use as a nodulizer for producing nodular cast iron, in which the graphite forms compact nodules instead of the usual flakes. Such iron has increased ductility.
Yttrium also can be used in laser systems and as a catalyst for ethylene polymerization reactions.
It also has potential use in ceramic and glass formulas, as the oxide has a high melting point and imparts shock resistance and low expansion characteristics to glass.
Isotopes in Medicine
Carbon nanotubes (CNT), which are nano-scaled carbon tubes, are being examined in nanobiotechnology research studies because it has been discovered that CNTs labeled with 86Y (with a half-life of 0.6 day) are soluble when they are injected into mice. This discovery was made after mice were given an intravenous or intraperitoneal (directly into a body cavity) injection with the 86Y CNT and then were examined using positron emission tomography (PET) scans to observe whether the 86Y had been flushed from their systems. The PET scan determined that accumulation of 86Y occurred in the liver, kidney, and spleen with very rapid blood clearance. This has broad implications for developing drug treatments [303] M. R. McDevitt, D. Chattopadhyay, J. S. Jaggi, R. D. Finn, P. B. Zanzonico, C. Villa, D. Rey, J. Mendenhall, C. A. Batt, J. T. Njardarson, D. A. Scheinberg. PLoS One2, e907 (2007).. Radiomicrosphere therapy (RT) that uses 90Y (with a half-life of 64 h) microspheres is a proven therapy that helps treat hepatic (liver) cancer (Fig. IUPAC.39.1) [304] C. D. South, M. M. Meyer, G. Meis, E. Y. Kim, F. B. Thomas, A. A. Rikabi, H. Khabiri, M. Bloomston. World J. Surg. Oncol.6, 93 (2008).. 90Y is also used in radiosynovectomy to reduce joint pain [305] E. ‐C. Rodríguez‐Merchán, L. A. Valentino (Eds.), Current and Future Issues in Hemophilia Care, John Wiley & Sons, New York (2011)..
Yttrium most often occurs in the +3 oxidation state, forming colorless or white salts because Y³⁺ has no f electrons. Yttrium oxide, Y₂O₃, is basic and refractory, and yttrium fluoride, YF₃, is a stable, sparingly soluble fluoride. Yttrium chloride, YCl₃, and yttrium nitrate, Y(NO₃)₃, are common soluble laboratory precursors. Mixed oxides such as yttrium barium copper oxide, YBa₂Cu₃O₇−δ, are important in superconductivity, with properties strongly dependent on oxygen content.
See more information at the Yttrium compound page.
Massive yttrium metal has low acute toxicity, but metal dust is a fire hazard and can irritate the lungs or skin. Soluble yttrium salts can be harmful if inhaled or ingested in significant amounts, and insoluble dusts require ordinary industrial dust control. Radioisotope ⁹⁰Y is a strong beta emitter used medically; its hazard is isotope-specific and mainly radiological, not a property of stable natural yttrium.
Yttrium is dispersed in the crust and is usually associated with rare-earth minerals rather than concentrated in its own ores. It is relatively immobile under neutral to alkaline conditions because Y³⁺ hydrolyzes and binds to oxides, phosphates, and organic matter. Weathering can concentrate yttrium with heavy rare earths in ion-adsorption clays and lateritic deposits. No essential biological role is known.
Yttrium is produced as part of rare-earth mining and separation, not as an independent primary metal commodity. Important sources include xenotime, monazite, bastnäsite fractions, and heavy-rare-earth-rich ion-adsorption clays. Separation is difficult because yttrium tracks the heavy lanthanides chemically, so solvent extraction and ion-exchange processes are central to supply. Demand is tied to phosphors, ceramics, lasers, and stabilized zirconia, with substitution possible in some phosphor applications but harder in structural ceramic uses. Recycling is limited and mostly associated with specialized phosphor and electronic waste streams.
Yttrium occurs in nearly all of the rare-earth minerals. Analysis of lunar rock samples obtained during the Apollo missions show a relatively high yttrium content.
It is recovered commercially from monazite sand, which contains about 3%, and from bastnasite, which contains about 0.2%. Wohler obtained the impure element in 1828 by reduction of the anhydrous chloride with potassium. The metal is now produced commercially by reduction of the fluoride with calcium metal. It can also be prepared by other techniques.
Yttrium is a trace element in the cosmos, made mainly by slow and rapid neutron-capture processes in evolved stars and explosive stellar environments. In the Solar System it is far less abundant than iron-group elements but more abundant than many neighboring heavy elements. Its single stable isotope, ⁸⁹Y, makes extraterrestrial yttrium isotopically simple compared with many rare earths.
- Yttrium has only one stable isotope, ⁸⁹Y.
- It was named from Ytterby, the Swedish village linked to several rare-earth discoveries.
- Y³⁺ is diamagnetic, unlike many neighboring lanthanide ions.
- Yttrium is often counted with the heavy rare earths in mining and trade.
- Nd:YAG laser crystals contain yttrium in the host lattice, not as the lasing ion.
- Yttria-stabilized zirconia conducts oxide ions at high temperature.
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
- 190 pm 比较所有元素的共价半径 →
- 范德华半径
- 219 pm 比较所有元素的范德华半径 →
- 金属半径
- 162 pm 比较所有元素的金属半径 →
- 密度
- 4470 kg/m³ 比较所有元素的密度 →
- 摩尔体积
- 0.0198 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
- 1521.85 °C 比较所有元素的熔点 →
- 沸点
- 3344.85 °C 比较所有元素的沸点 →
- 比热容
- 0.298 J/(g·K) 比较所有元素的比热容 →
- 摩尔热容
- 26.53 J/(mol·K) 比较所有元素的摩尔热容 →
- 晶体结构
- 六方密堆积 比较所有元素的晶体结构 →
化学性质
- 电负性(鲍林)
- 1.22 比较所有元素的电负性(鲍林) →
- 电负性(Allen)
- 1.12
- 电子亲和能
- 0.307 eV
- 第一电离能
- 6.21726 eV 比较所有元素的第一电离能 →
- 第二电离能
- 12.223642 eV 比较所有元素的第二电离能 →
- 第三电离能
- 20.524481 eV 比较所有元素的第三电离能 →
- 第四电离能
- 60.607409 eV 比较所有元素的第四电离能 →
- 第五电离能
- 75.350259 eV 比较所有元素的第五电离能 →
- 氧化态
- 0, +1, +2, +3 比较所有元素的氧化态 →
- 价电子
- 3 比较所有元素的价电子 →
- 电子排布
- [Kr] 5s2 4d1
热力学性质
- 熔化热
- 0.11836037 eV 比较所有元素的熔化热 →
- 汽化热
- 3.762243 eV 比较所有元素的汽化热 →
- 升华热
- 4.394465 eV
- 原子化热
- 4.394465 eV
- 原子化焓
- 4.40172 eV
核性质
- 质子
- 39 比较所有元素的质子 →
- 中子
- 50 比较所有元素的中子 →
- 已知同位素
- 35 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
- Y-89
- 发现年份
- 1794
丰度
- 丰度(地壳)
- 33 mg/kg 比较所有元素的丰度(地壳) →
- 丰度(海洋)
- 1.3 × 10−5 mg/L 比较所有元素的丰度(海洋) →
晶体结构
- 晶格常数a
- 365 pm
电子结构
- 各电子层电子数
- 2, 8, 18, 9, 2 比较所有元素的各电子层电子数 →
标识符
- CAS登记号
- 7440-65-5 比较所有元素的CAS登记号 →
- 谱项符号
- 2D3/2
- InChI
- InChI=1S/Y
- InChI Key
- VWQVUPCCIRVNHF-UHFFFAOYSA-N
电子排布 实测值
Y: 4d¹ 5s²[Kr] 4d¹ 5s²1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹ 5s²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 |
|---|---|---|---|
| 89 稳定 | 88.9058403 ± 0.0000024 | 100.0000% | 稳定 |
物相 / 状态
原因: 低于熔点(1521.85 °C)1496.8 °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
原子光谱
已显示10项,共39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 |
|---|---|---|---|---|
| Y I | 0 | 361 | 189 | 351 |
| Y II | +1 | 116 | 66 | 116 |
| Y III | +2 | 113 | 0 | 0 |
| Y IV | +3 | 25 | 0 | 0 |
| Y V | +4 | 632 | 632 | 632 |
| Y VII | +6 | 168 | 168 | 168 |
| Y VIII | +7 | 70 | 70 | 70 |
收录能级 ?
| 离子 | 电荷 | 能级 |
|---|---|---|
| Y I | 0 | 194 |
| Y II | +1 | 249 |
| Y III | +2 | 51 |
| Y IV | +3 | 130 |
| Y V | +4 | 114 |
| Y VI | +5 | 2 |
| Y VII | +6 | 57 |
| Y VIII | +7 | 33 |
| Y IX | +8 | 2 |
| Y X | +9 | 2 |
离子半径
| 电荷 | 配位 | 自旋 | 半径 |
|---|---|---|---|
| +3 | 6 | 暂无 | 90 pm |
| +3 | 7 | 暂无 | 96 pm |
| +3 | 8 | 暂无 | 101.89999999999999 pm |
| +3 | 9 | 暂无 | 107.5 pm |
化合物
同位素 (1)
Natural yttrium contains one isotope, 89Y. Nineteen other unstable isotopes have been characterized.
| 质量数 | 原子质量(u) | 天然丰度 | 半衰期 | 衰变方式 | |
|---|---|---|---|---|---|
| 89 稳定 | 88.9058403 ± 0.0000024 | 100.0000% | 稳定 | stable |
谱线
已显示50项,共266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 | |
|---|---|---|---|---|---|---|---|
| 410.23691 nm | 9900 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(1D).5p y 2F* | 实测值 | NIST | |
| 407.735998 nm | 9400 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(1D).5p y 2F* | 实测值 | NIST | |
| 412.829876 nm | 8900 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(1D).5p y 2D* | 实测值 | NIST | |
| 414.28358 nm | 7500 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(1D).5p y 2D* | 实测值 | NIST | |
| 404.76281 nm | 2400 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p y 2P* | 实测值 | NIST | |
| 416.750671 nm | 2400 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(1D).5p y 2F* | 实测值 | NIST | |
| 423.5934 nm | 2200 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(1D).5p y 2D* | 实测值 | NIST | |
| 408.37033 nm | 2000 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p y 2P* | 实测值 | NIST | |
| 417.41339 nm | 2000 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p y 2P* | 实测值 | NIST | |
| 464.368813 nm | 2000 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p z 2F* | 实测值 | NIST | |
| 467.48486 nm | 2000 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p z 2F* | 实测值 | NIST | |
| 619.17183 nm | 1200 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p z 2D* | 实测值 | NIST | |
| 643.50036 nm | 1000 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p z 2D* | 实测值 | NIST | |
| 403.982219 nm | 940 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(1D).5p y 2D* | 实测值 | NIST | |
| 452.72342 nm | 890 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D* | 实测值 | NIST | |
| 483.9861 nm | 770 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4F* | 实测值 | NIST | |
| 552.75472 nm | 740 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p z 4G* | 实测值 | NIST | |
| 546.6464 nm | 710 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p z 4G* | 实测值 | NIST | |
| 558.18694 nm | 620 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p z 4G* | 实测值 | NIST | |
| 563.01301 nm | 560 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p z 4G* | 实测值 | NIST | |
| 484.56655 nm | 550 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4F* | 实测值 | NIST | |
| 450.59441 nm | 500 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D* | 实测值 | NIST | |
| 452.77815 nm | 440 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D* | 实测值 | NIST | |
| 476.09753 nm | 410 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p z 2F* | 实测值 | NIST | |
| 485.26766 nm | 410 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4F* | 实测值 | NIST | |
| 485.98428 nm | 330 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4F* | 实测值 | NIST | |
| 425.11994 nm | 300 | Y I | emission | 4d.5s.(3D).5p z 4F* → 4d.5s.(3D).5d e 4G | 实测值 | NIST | |
| 448.74634 nm | 300 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D* | 实测值 | NIST | |
| 550.3466 nm | 300 | Y I | emission | 4d2.(3F).5s a 2F → 4d2.(3F).5p x 2F* | 实测值 | NIST | |
| 622.25784 nm | 300 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p z 2D* | 实测值 | NIST | |
| 543.82242 nm | 190 | Y I | emission | 4d2.(3F).5s a 2F → 4d2.(3F).5p x 2D* | 实测值 | NIST | |
| 546.62434 nm | 190 | Y I | emission | 4d.5s.(3D).5p z 4F* → 4d.5s.(3D).6s e 4D | 实测值 | NIST | |
| 679.37029 nm | 190 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p z 4F* | 实测值 | NIST | |
| 524.08001 nm | 181 | Y I | emission | 4d2.(1G).5s a 2G → 4d2.(1G).5p z 2H* | 实测值 | NIST | |
| 447.69471 nm | 180 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p x 2F* | 实测值 | NIST | |
| 469.67994 nm | 180 | Y I | emission | 4d2.(1D).5s b 2D → 4d2.(1D).5p w 2F* | 实测值 | NIST | |
| 479.92999 nm | 180 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4F* | 实测值 | NIST | |
| 513.51993 nm | 180 | Y I | emission | 4d2.(1G).5s a 2G → 4d2.(1G).5p z 2H* | 实测值 | NIST | |
| 557.74153 nm | 180 | Y I | emission | 4d2.(3F).5s a 2F → 4d2.(3F).5p z 2G* | 实测值 | NIST | |
| 447.57178 nm | 170 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D* | 实测值 | NIST | |
| 472.8516 nm | 170 | Y I | emission | 5s2.5p z 2P* → 5s2.6s e 2S | 实测值 | NIST | |
| 478.68762 nm | 170 | Y I | emission | 4d2.(3P).5s a 4P → 4d2.(3P).5p x 4D* | 实测值 | NIST | |
| 421.77985 nm | 160 | Y I | emission | 5s2.5p z 2P* → 5s2.(2D).5d e 2D | 实测值 | NIST | |
| 447.74436 nm | 160 | Y I | emission | 4d2.(3F).5s a 4F → 4d2.(3F).5p y 4D* | 实测值 | NIST | |
| 475.2787 nm | 160 | Y I | emission | 4d2.(3F).5s a 2F → 4d2.(3P).5p x 4D* | 实测值 | NIST | |
| 570.67133 nm | 160 | Y I | emission | 4d.5s.(3D).5p z 4F* → 4d.5s.(3D).6s e 4D | 实测值 | NIST | |
| 492.18769 nm | 150 | Y I | emission | 5s2.5p z 2P* → 5s2.6s e 2S | 实测值 | NIST | |
| 613.84349 nm | 150 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p z 4D* | 实测值 | NIST | |
| 668.75669 nm | 150 | Y I | emission | 4d.5s2 a 2D → 4d.5s.(3D).5p z 4F* | 实测值 | NIST | |
| 465.37837 nm | 140 | Y I | emission | 4d2.(1D).5s b 2D → 4d2.(3P).5p y 4P* | 实测值 | NIST |
扩展性质
共价半径(扩展)
- 共价半径(Pyykkö)
- 163 pm
- 共价半径(Pyykkö,双键)
- 130 pm
- 共价半径(Pyykkö,三键)
- 124 pm
范德华半径
- Batsanov
- 240 pm
- Alvarez
- 275 pm
- UFF
- 334.5 pm
- MM3
- 271 pm
原子半径与金属半径
- 原子半径(Rahm)
- 274 pm
- 金属半径(C12)
- 180 pm
编号标度
- Mendeleev
- 12
- Pettifor
- 19
- Glawe
- 21
电负性标度
- Ghosh
- 0
- Miedema
- 3
- Gunnarsson–Lundqvist
- 3
- Robles–Bartolotti
- 3
极化率与色散
- 偶极极化率
- 162 a.u.
- 偶极极化率(不确定度)
- 12 a.u.
- C₆ (Gould–Bučko)
- 2600 Ha·Bohr6
化学亲和力
- 质子亲和能
- 967 kJ/mol
- 气相碱性
- 945.9 kJ/mol
Miedema参数
- Miedema摩尔体积
- 19.9 cm3/mol
- Miedema电子密度
- 2
供应风险与经济性
- 生产集中度
- 97
- 相对供应风险
- 10
- 储量分布
- 50
- 政治稳定性(最大生产国)
- 24
- 政治稳定性(最大储量国)
- 24
相变与同素异形体
| 熔点 | 1795.15 K |
| 沸点 | 3618.15 K |
氧化态分类
高级参考数据
屏蔽常数 (10)
| n | 轨道 | σ |
|---|---|---|
| 1 | s | 0.8244 |
| 2 | p | 3.9968 |
| 2 | s | 10.3778 |
| 3 | d | 13.6029 |
| 3 | p | 15.9075 |
| 3 | s | 15.4485 |
| 4 | d | 23.0416 |
| 4 | p | 26.2544 |
| 4 | s | 24.7364 |
| 5 | s | 32.744 |
晶体半径详情 (4)
| 电荷 | CN | 自旋 | rcrystal (pm) | 来源 |
|---|---|---|---|---|
| 3 | VI | 104 | from r^3 vs V plots, | |
| 3 | VII | 110 | ||
| 3 | VIII | 115.9 | from r^3 vs V plots, | |
| 3 | IX | 121.5 | from r^3 vs V plots, |
同位素衰变方式 (60)
| 同位素 | 模式 | 强度 |
|---|---|---|
| 75 | B+ | — |
| 75 | B+p | — |
| 75 | p | — |
| 76 | B+ | — |
| 76 | p | — |
| 76 | B+p | — |
| 77 | B+ | 100% |
| 77 | B+p | — |
| 77 | p | — |
| 78 | B+ | 100% |
X射线散射因子 (619)
| 能量 (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 2.26036 |
| 10.1617 | — | 2.25621 |
| 10.3261 | — | 2.25207 |
| 10.4931 | — | 2.24793 |
| 10.6628 | — | 2.2438 |
| 10.8353 | — | 2.23968 |
| 11.0105 | — | 2.23344 |
| 11.1886 | — | 2.21122 |
| 11.3696 | — | 2.18921 |
| 11.5535 | — | 2.16742 |
补充数据
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
3.3×101 milligrams per kilogram
参考文献 (1)
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
1.3×10-5 milligrams per liter
参考文献 (1)
Sources
Sources of this element.
Yttrium occurs in nearly all of the rare-earth minerals. Analysis of lunar rock samples obtained during the Apollo missions show a relatively high yttrium content.
It is recovered commercially from monazite sand, which contains about 3%, and from bastnasite, which contains about 0.2%. Wohler obtained the impure element in 1828 by reduction of the anhydrous chloride with potassium. The metal is now produced commercially by reduction of the fluoride with calcium metal. It can also be prepared by other techniques.
参考文献 (1)
- [6] Yttrium https://periodic.lanl.gov/39.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 Yttrium.
The element property data was retrieved from publications.

