Vanadium (V)
transition-metalSolid
Nguyên tử khối chuẩn
50,9415 uCấu hình electron
[Ar] 4s2 3d3Nhiệt độ nóng chảy
1909,85 °CNhiệt độ sôi
3406,85 °CKhối lượng riêng
6000 kg/m³Trạng thái oxi hóa
−3, −1, 0, +1, +2, +3, +4, +5Độ âm điện (Pauling)
1,63Năng lượng ion hóa (lần 1)
6,746187 eVNăm phát hiện
1830Bán kính nguyên tử
135 pmChi tiết
Vanadium is a hard early transition metal with variable oxidation states and strong affinity for oxygen, nitrogen, and carbon. It occurs mainly dispersed in minerals rather than as native metal. Its technological importance comes chiefly from alloying steel and from vanadium redox-flow batteries. Chemically it is notable for accessible +2, +3, +4, and +5 states, often producing distinctly colored ions and oxides.
Pure vanadium is a bright white metal, and is soft and ductile. It has good corrosion resistance to alkalis, sulfuric and hydrochloric acid, and salt water, but the metal oxidizes readily above 660°C.
The metal has good structural strength and a low fission neutron cross section, making it useful in nuclear applications.
The name derives from the Scandinavian goddess of love and beauty, Freyja Vanadis, because of its many beautiful multi-coloured compounds. Vanadium was discovered by the Swedish physician and chemist Nils-Gabriel Sefström in 1830.
Vanadium had originally been discovered by the Spanish mineralogist Andres Manuel del Rio y Fernandez in 1801, who named it erythronium, after the plant of that name whose flowers have many beautiful colours. Del Rio later decided that it was really chromium in his lead sample. Vanadium metal was first isolated by the English chemist Henry Enfield Roscoe in 1869.
Vanadium was discovered by Andrés Manuel del Rio, a Spanish chemist, in 1801. Rio sent samples of vanadium ore and a letter describing his methods to the Institute de France in Paris, France, for analysis and confirmation. Unfortunately for Rio, his letter was lost in a shipwreck and the Institute only received his samples, which contained a brief note describing how much this new element, which Rio had named erythronium, resembled chromium. Rio withdrew his claim when he received a letter from Paris disputing his discovery. Vanadium was rediscovered by Nils Gabriel Sefstrôm, a Swedish chemist, in 1830 while analyzing samples of iron from a mine in Sweden. Vanadium was isolated by Sir Henry Enfield Roscoe, an English chemist, in 1867 by combining vanadium trichloride (VCl3) with hydrogen gas (H2). Today, vanadium is primarily obtained from the minerals vanadinite (Pb5(VO)3Cl) and carnotite (K2(UO2)2VO4·1-3H2O) by heating crushed ore in the presence of carbon and chlorine to produce vanadium trichloride. The vanadium trichloride is then heated with magnesium in an argon atmosphere.
Named after Scandinavian goddess, Vanadis. Vanadium was first discovered by del Rio in 1801. Unfortunately, a French chemist incorrectly declared that del Rio's new element was only impure chromium. Del Rio thought himself to be mistaken and accepted the French chemists' statement.
The element was rediscovered in 1830 by Sefstrom, who named the element in honor of the Scandinavian goddess, Vanadis, because of its beautiful multicolored compounds. It was isolated in nearly pure form by Roscoe, who in 1867 reduced the chloride with hydrogen.
Vanadium of 99.3 to 99.8% purity was not produced until 1922.
Pure vanadium is a silvery-gray, ductile metal when well refined. It forms a protective oxide film in air, but finely divided metal or hot surfaces oxidize more readily. Interstitial oxygen, nitrogen, carbon, and hydrogen strongly affect its hardness and brittleness.
Most vanadium is used as a steel additive, commonly through ferrovanadium, to improve strength, toughness, and wear resistance in structural steels, tool steels, and high-strength low-alloy grades. Vanadium also strengthens some titanium alloys, especially aerospace alloy families based on titanium, aluminum, and vanadium. Vanadium redox-flow batteries use dissolved vanadium ions in different oxidation states for stationary energy storage. Vanadium compounds serve as catalysts in selected oxidation reactions, notably in sulfuric acid manufacture.
Vanadium is corrosion resistant and is sometimes used to make special tubes and pipes for the chemical industry. Vanadium also does not easily absorb neutrons and has some applications in the nuclear power industry. A thin layer of vanadium is used to bond titanium to steel.
Nearly 80% of the vanadium produced is used to make ferrovanadium or as an additive to steel. Ferrovanadium is a strong, shock resistant and corrosion resistant alloy of iron containing between 1% and 6% vanadium. Ferrovanadium and vanadium-steel alloys are used to make such things as axles, crankshafts and gears for cars, parts of jet engines, springs and cutting tools.
Vanadium pentoxide (V2O5) is perhaps vanadium's most useful compound. It is used as a mordant, a material which permanently fixes dyes to fabrics. Vanadium pentoxide is also used as a catalyst in certain chemical reactions and in the manufacture of ceramics. Vanadium pentoxide can also be mixed with gallium to form superconductive magnets.
Vanadium is used in producing rust resistant and high speed tool steels. It is an important carbide stabilizer in making steels.
About 80% of the vanadium now produced is used as ferrovanadium or as a steel additive. Vanadium foil is used as a bonding agent in cladding titanium to steel. Vanadium pentoxide is used in ceramics and as a catalyst.
It is also used to produce a superconductive magnet with a field of 175,000 gauss.
Isotopes in Earth/Planetary Science
The isotopic abundances of 50V and 51V have been used as an indicator of planetary core formation processes (Fig. IUPAC.23.1). Vanadium is greatly depleted in the Earth’s mantle compared with that in chondritic meteorites (chondrites). It is assumed that the deficit of vanadium in the Earth’s crust is accounted for by its partitioning into the core [202] S. G. Nielsen, J. Prytulak, A. N. Halliday. “Vanadium isotope ratios in meteorites: a new tool to investigate planetary and nebular processes”, in 40th Lunar and Planetary Science Conference.. The ratios of 50V and 51V have been used as a test of the X-wind model, which accounts for a portion of the extinct radioactive nuclides present in the early Solar System by radiation from the young Sun [202] S. G. Nielsen, J. Prytulak, A. N. Halliday. “Vanadium isotope ratios in meteorites: a new tool to investigate planetary and nebular processes”, in 40th Lunar and Planetary Science Conference.. 51V is depleted in meteorites compared to Earth [203] S. G. Nielsen, J. Prytulak, B. J. Wood, A. Halliday. Earth Planet. Sci. Lett.389, 169 (2014)..
Isotopes in Industry
51V is used in solid state Nuclear Magnetic Resonance (NMR) to provide information to material scientists about surface species of vanadium oxide catalysts (substances that increase the rate of chemical reactions without themselves undergoing any permanent chemical change), their interaction with the supporting material, and their reactions during catalytic processes [205] K. J. D. MacKenzie, M. E. Smith. Multinuclear Solid-State NMR of Inorganic Materials, Elsevier Science Ltd, Oxford (2002)..
Vanadium chemistry is dominated by oxides, oxyanions, and coordination compounds. Vanadium(V) oxide, V₂O₅, is the most important oxide and is used as a catalyst and precursor to many vanadates. Vanadyl sulfate, VOSO₄, contains the stable oxovanadium(IV) ion and is common in solution chemistry. Sodium metavanadate, NaVO₃, and ammonium metavanadate, NH₄VO₃, are representative vanadate salts. Lower oxidation states occur in compounds such as vanadium(III) chloride, VCl₃, but are more air-sensitive.
See more information at the Vanadium compound page.
Massive vanadium metal is not highly reactive at room temperature, but dusts can present fire and inhalation hazards. Many soluble vanadium compounds are toxic by ingestion or inhalation, and vanadium pentoxide dust or fume is an important occupational concern because it irritates the respiratory tract and is classified as a suspected carcinogenic hazard in some regulatory systems. Risks vary strongly with compound solubility and oxidation state.
Vanadium and its compounds are toxic and should be handled with care. The maximum allowable concentration of V2O5 dust in air is about 0.05 (8-hour time-weighted average - 40-hour week).
Vanadium is a trace constituent of many rocks, soils, crude oils, coals, and marine sediments. Weathering releases vanadate species under oxidizing conditions, while reducing sediments can immobilize vanadium in less soluble forms or bind it to organic matter and sulfide phases. Combustion of heavy oils and coal can add vanadium-rich particles to air and ash. Some organisms accumulate vanadium, but its essentiality is limited and species-specific.
Vanadium is produced mainly from vanadium-bearing titanomagnetite ores, from slags generated during iron and steel processing, and from residues such as spent catalysts and certain petroleum ashes. The market is closely tied to steelmaking, so demand can fluctuate with construction and infrastructure cycles. Battery use is a growing but smaller source of demand and may favor leasing or electrolyte recycling because the vanadium remains recoverable. Substitution in steels is possible in some cases with niobium, molybdenum, or other alloying strategies, but performance and cost differ.
Vanadium is found in about 65 different minerals among which are carnotite, roscoelite, vanadinite, and patronite, important sources of the metal. Vanadium is also found in phosphate rock and certain iron ores, and is present in some crude oils in the form of organic complexes. It is also found in small percentages in meteorites.
Commercial production from petroleum ash holds promise as an important source of the element. High-purity ductile vanadium can be obtained by reduction of vanadium trichloride with magnesium or with magnesium-sodium mixtures.
Much of the vanadium metal being produced is now made by calcium reduction of V2O5 in a pressure vessel, an adaption of a process developed by McKechnie and Seybair.
Vanadium is a minor cosmic element compared with neighboring iron-group elements. It is made during stellar nucleosynthesis and supernova-related processes, but its abundance is limited by nuclear stability and production pathways. In planetary materials it occurs as a trace lithophile to moderately siderophile element and is commonly incorporated into silicates, oxides, and metal-rich phases rather than forming its own minerals.
- Vanadium was named for Vanadis, a name associated with the Norse goddess Freyja, because of its colorful compounds.
- Small vanadium additions can refine steel grain size through stable carbides and nitrides.
- A single vanadium redox-flow battery can use vanadium on both sides, reducing cross-contamination problems.
- Vanadium in crude oil can poison some refining catalysts if not removed or managed.
- High-purity vanadium is much more ductile than metal contaminated with interstitial elements.
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
- 153 pm So sánh Bán kính cộng hóa trị của tất cả nguyên tố →
- Bán kính van der Waals
- 179 pm So sánh Bán kính van der Waals của tất cả nguyên tố →
- Bán kính kim loại
- 122 pm So sánh Bán kính kim loại của tất cả nguyên tố →
- Khối lượng riêng
- 6000 kg/m³ So sánh Khối lượng riêng của tất cả nguyên tố →
- Thể tích mol
- 0,00835 L/mol
- Pha ở STP
- Rắn So sánh Pha ở STP của tất cả nguyên tố →
- Nhiệt độ nóng chảy
- 1909,85 °C So sánh Nhiệt độ nóng chảy của tất cả nguyên tố →
- Nhiệt độ sôi
- 3406,85 °C So sánh Nhiệt độ sôi của tất cả nguyên tố →
- Độ dẫn nhiệt
- 30,7 W/(m·K) So sánh Độ dẫn nhiệt của tất cả nguyên tố →
- Nhiệt dung riêng
- 0,489 J/(g·K) So sánh Nhiệt dung riêng của tất cả nguyên tố →
- Nhiệt dung mol
- 24,89 J/(mol·K) So sánh Nhiệt dung mol của tất cả nguyên tố →
- Cấu trúc tinh thể
- Lập phương tâm khối So sánh Cấu trúc tinh thể của tất cả nguyên tố →
Hóa học
- Độ âm điện (Pauling)
- 1,63 So sánh Độ âm điện (Pauling) của tất cả nguyên tố →
- Độ âm điện (Allen)
- 1,53
- Ái lực electron
- 0,525 eV
- Năng lượng ion hóa (lần 1)
- 6,746187 eV So sánh Năng lượng ion hóa (lần 1) của tất cả nguyên tố →
- Năng lượng ion hóa (lần 2)
- 14,63405 eV So sánh Năng lượng ion hóa (lần 2) của tất cả nguyên tố →
- Năng lượng ion hóa (lần 3)
- 29,311201 eV So sánh Năng lượng ion hóa (lần 3) của tất cả nguyên tố →
- Năng lượng ion hóa (lần 4)
- 46,709161 eV So sánh Năng lượng ion hóa (lần 4) của tất cả nguyên tố →
- Năng lượng ion hóa (lần 5)
- 65,281875 eV So sánh Năng lượng ion hóa (lần 5) của tất cả nguyên tố →
- Trạng thái oxi hóa
- −3, −1, 0, +1, +2, +3, +4, +5 So sánh Trạng thái oxi hóa của tất cả nguyên tố →
- Electron hóa trị
- 5 So sánh Electron hóa trị của tất cả nguyên tố →
- Cấu hình electron
- [Ar] 4s2 3d3
Nhiệt động lực học
- Nhiệt nóng chảy
- 0,22283256 eV So sánh Nhiệt nóng chảy của tất cả nguyên tố →
- Nhiệt hóa hơi
- 4,76758 eV So sánh Nhiệt hóa hơi của tất cả nguyên tố →
- Nhiệt thăng hoa
- 5,329326 eV
- Nhiệt nguyên tử hóa
- 5,329326 eV
- Enthalpy nguyên tử hóa
- 5,342799 eV
Hạt nhân
- Proton
- 23 So sánh Proton của tất cả nguyên tố →
- Neutron
- 28 So sánh Neutron của tất cả nguyên tố →
- Các đồng vị đã biết
- 29 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
- V-51
- Năm phát hiện
- 1830
Độ phổ biến
- Độ phổ biến (vỏ Trái Đất)
- 120 mg/kg So sánh Độ phổ biến (vỏ Trái Đất) của tất cả nguyên tố →
- Độ phổ biến (đại dương)
- 0,003 mg/L So sánh Độ phổ biến (đại dương) của tất cả nguyên tố →
Cấu trúc tinh thể
- Hằng số mạng a
- 302 pm
Cấu trúc electron
- Số electron trong mỗi lớp
- 2, 8, 11, 2 So sánh Số electron trong mỗi lớp của tất cả nguyên tố →
Mã định danh
- Số CAS
- 7440-62-2 So sánh Số CAS của tất cả nguyên tố →
- Ký hiệu số hạng
- 4F3/2
- InChI
- InChI=1S/V
- Khóa InChI
- LEONUFNNVUYDNQ-UHFFFAOYSA-N
Cấu hình electron Đo đạc
V: 3d³ 4s²[Ar] 3d³ 4s²1s² 2s² 2p⁶ 3s² 3p⁶ 3d³ 4s²Mô 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 |
|---|---|---|---|
| 51 Bền | 50,94395704 ± 0,00000094 | 99,7500% | Bền |
Pha / Trạng thái
Lý do: thấp hơn nhiệt độ nóng chảy (1909,85 °C) một lượng 1884,8 °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 23. 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 |
|---|---|---|---|---|
| V I | 0 | 3985 | 1256 | 3985 |
| V II | +1 | 3568 | 1896 | 3568 |
| V III | +2 | 94 | 30 | 30 |
| V IV | +3 | 423 | 300 | 423 |
| V V | +4 | 164 | 10 | 164 |
| V VI | +5 | 175 | 4 | 175 |
| V VII | +6 | 39 | 9 | 39 |
| V VIII | +7 | 69 | 19 | 69 |
| V IX | +8 | 72 | 44 | 72 |
| V X | +9 | 69 | 45 | 69 |
Dữ liệu mức năng lượng ?
| Ion | Điện tích | Mức năng lượng |
|---|---|---|
| V I | 0 | 550 |
| V II | +1 | 408 |
| V III | +2 | 300 |
| V IV | +3 | 100 |
| V V | +4 | 71 |
| V VI | +5 | 62 |
| V VII | +6 | 35 |
| V VIII | +7 | 52 |
| V IX | +8 | 39 |
| V X | +9 | 28 |
Bán kính ion
| Điện tích | Phối trí | Spin | Bán kính |
|---|---|---|---|
| +2 | 6 | Không có | 79 pm |
| +3 | 6 | Không có | 64 pm |
| +4 | 5 | Không có | 53 pm |
| +4 | 6 | Không có | 57.99999999999999 pm |
| +4 | 8 | Không có | 72 pm |
| +5 | 4 | Không có | 35.5 pm |
| +5 | 5 | Không có | 46 pm |
| +5 | 6 | Không có | 54 pm |
Hợp chất
Đồng vị (1)
Natural vanadium is a mixture of two isotopes, 50V (0.24%) and 51V (99.76%). 50V is slightly radioactive, having a half-life of> 3.9 x 1017 years. Nine other unstable isotopes are recognized.
| Số khối | Khối lượng nguyên tử (u) | Độ phổ biến tự nhiên | Chu kỳ bán rã | Kiểu phân rã | |
|---|---|---|---|---|---|
| 51 Bền | 50,94395704 ± 0,00000094 | 99,7500% ± 0,0040% | Bền | stable |
Vạch phổ
Đang hiển thị 50 trên 2461. Theo mặc định, chỉ hiển thị các vạch phổ có cường độ đã được đo.
| Bước sóng (nm) | Cường độ | Bậc ion hóa | Loại | Chuyển mức | Độ chính xác | Nguồn | |
|---|---|---|---|---|---|---|---|
| 437.92304 nm | 74000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 411.17788 nm | 53000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 438.4713 nm | 44000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 438.99793 nm | 30000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 440.85162 nm | 29000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 411.51768 nm | 25000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 439.52233 nm | 23000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 440.81958 nm | 23000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 385.58404 nm | 18000000 | V I | emission | 3d3.4s2 a 4F → 3d4.(5D).4p y 4D* | Đo đạc | NIST | |
| 412.80642 nm | 18000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 413.19909 nm | 18000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 409.97833 nm | 17000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 410.5157 nm | 17000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 440.76338 nm | 17000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 384.074941 nm | 16000000 | V I | emission | 3d3.4s2 a 4F → 3d4.(5D).4p y 4D* | Đo đạc | NIST | |
| 390.22531 nm | 14000000 | V I | emission | 3d3.4s2 a 4F → 3d4.(5D).4p y 4F* | Đo đạc | NIST | |
| 410.97575 nm | 14000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 413.44835 nm | 14000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 440.66382 nm | 14000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 446.02914 nm | 13000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p z 6P* | Đo đạc | NIST | |
| 412.34985 nm | 12000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 409.26831 nm | 11000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 411.64716 nm | 11000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6D* | Đo đạc | NIST | |
| 382.855694 nm | 10000000 | V I | emission | 3d3.4s2 a 4F → 3d4.(5D).4p y 4D* | Đo đạc | NIST | |
| 387.507162 nm | 9000000 | V I | emission | 3d3.4s2 a 4F → 3d4.(5D).4p y 4F* | Đo đạc | NIST | |
| 459.41158 nm | 8900000 | V I | emission | 3d3.4s2 a 4F → 3d3.(4F).4s.4p.(3P*) z 4G* | Đo đạc | NIST | |
| 440.05717 nm | 8800000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 609.02084 nm | 8100000 | V I | emission | 3d4.(5D).4s a 4D → 3d4.(5D).4p z 4P* | Đo đạc | NIST | |
| 386.48561 nm | 7900000 | V I | emission | 3d3.4s2 a 4F → 3d4.(5D).4p y 4F* | Đo đạc | NIST | |
| 381.82414 nm | 7800000 | V I | emission | 3d3.4s2 a 4F → 3d4.(5D).4p y 4D* | Đo đạc | NIST | |
| 569.85189 nm | 7200000 | V I | emission | 3d4.(5D).4s a 4D → 3d4.(5D).4p y 4F* | Đo đạc | NIST | |
| 435.28654 nm | 6600000 | V I | emission | 3d3.4s2 a 4F → 3d3.(4F).4s.4p.(3P*) z 4F* | Đo đạc | NIST | |
| 445.97536 nm | 6300000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p z 6P* | Đo đạc | NIST | |
| 381.349106 nm | 6000000 | V I | emission | 3d3.4s2 a 4F → 3d4.(5D).4p y 4D* | Đo đạc | NIST | |
| 458.6366 nm | 5700000 | V I | emission | 3d3.4s2 a 4F → 3d3.(4F).4s.4p.(3P*) z 4G* | Đo đạc | NIST | |
| 570.3575 nm | 5600000 | V I | emission | 3d4.(5D).4s a 4D → 3d4.(5D).4p y 4F* | Đo đạc | NIST | |
| 624.31073 nm | 5500000 | V I | emission | 3d4.(5D).4s a 6D → 3d3.(4F).4s.4p.(3P*) z 6D* | Đo đạc | NIST | |
| 409.0568 nm | 5300000 | V I | emission | 3d4.(5D).4s a 4D → 3d3.(4F).4s.4p.(1P*) w 4F* | Đo đạc | NIST | |
| 488.15569 nm | 5300000 | V I | emission | 3d3.4s2 a 4F → 3d3.(4F).4s.4p.(3P*) z 4D* | Đo đạc | NIST | |
| 444.168 nm | 5200000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p z 6P* | Đo đạc | NIST | |
| 572.70445 nm | 5100000 | V I | emission | 3d4.(5D).4s a 4D → 3d4.(5D).4p y 4F* | Đo đạc | NIST | |
| 434.0998 nm | 5000000 | V I | emission | 3d3.4s2 a 4F → 3d3.(4F).4s.4p.(3P*) z 4F* | Đo đạc | NIST | |
| 458.03967 nm | 4400000 | V I | emission | 3d3.4s2 a 4F → 3d3.(4F).4s.4p.(3P*) z 4G* | Đo đạc | NIST | |
| 487.54859 nm | 4400000 | V I | emission | 3d3.4s2 a 4F → 3d3.(4F).4s.4p.(3P*) z 4D* | Đo đạc | NIST | |
| 409.54749 nm | 4300000 | V I | emission | 3d4.(5D).4s a 4D → 3d3.(4F).4s.4p.(1P*) w 4F* | Đo đạc | NIST | |
| 389.01792 nm | 4200000 | V I | emission | 3d3.4s2 a 4F → 3d3.(4F).4s.4p.(3P*) z 2G* | Đo đạc | NIST | |
| 390.98572 nm | 4200000 | V I | emission | 3d3.4s2 a 4F → 3d4.(5D).4p y 4F* | Đo đạc | NIST | |
| 441.64662 nm | 4000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 442.15674 nm | 4000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p y 6F* | Đo đạc | NIST | |
| 443.78304 nm | 4000000 | V I | emission | 3d4.(5D).4s a 6D → 3d4.(5D).4p z 6P* | Đo đạc | NIST |
Tính chất mở rộng
Bán kính cộng hóa trị (mở rộng)
- Bán kính cộng hóa trị (Pyykkö)
- 134 pm
- Bán kính cộng hóa trị (Pyykkö, liên kết đôi)
- 112 pm
- Bán kính cộng hóa trị (Pyykkö, liên kết ba)
- 106 pm
Bán kính van der Waals
- Batsanov
- 205 pm
- Alvarez
- 242 pm
- UFF
- 314,4 pm
- MM3
- 229 pm
Bán kính nguyên tử và kim loại
- Bán kính nguyên tử (Rahm)
- 252 pm
- Bán kính kim loại (C12)
- 134 pm
Các thang đánh số
- Mendeleev
- 47
- Pettifor
- 54
- Glawe
- 54
Các thang độ âm điện
- Ghosh
- 0
- Miedema
- 4
- Robles–Bartolotti
- 4
Độ phân cực hóa và tán sắc
- Độ phân cực hóa lưỡng cực
- 87 a.u.
- Độ phân cực hóa lưỡng cực (độ không đảm bảo)
- 10 a.u.
- C₆
- 832 Ha·Bohr6
- C₆ (Gould–Bučko)
- 955 Ha·Bohr6
Ái lực hóa học
- Ái lực proton
- 859,4 kJ/mol
- Độ bazơ pha khí
- 836,8 kJ/mol
Thông số Miedema
- Thể tích mol Miedema
- 8,36 cm3/mol
- Mật độ electron Miedema
- 4
Rủi ro nguồn cung và kinh tế
- Mức độ tập trung sản xuất
- 34
- Rủi ro nguồn cung tương đối
- 7
- Phân bố trữ lượng
- 36
- Ổn định chính trị (quốc gia sản xuất lớn nhất)
- 44
- Ổn định chính trị (quốc gia có trữ lượng lớn nhất)
- 24
Chuyển pha và các dạng thù hình
| Nhiệt độ nóng chảy | 2183,15 K |
| Nhiệt độ sôi | 3680,15 K |
Phân loại trạng thái oxi hóa
Dữ liệu tham khảo chuyên sâu
Hằng số chắn (7)
| n | Orbital | σ |
|---|---|---|
| 1 | s | 0,5744 |
| 2 | p | 3,9272 |
| 2 | s | 6,8186 |
| 3 | d | 14,0171 |
| 3 | p | 12,215 |
| 3 | s | 11,2907 |
| 4 | s | 18,0188 |
Chi tiết bán kính tinh thể (8)
| Điện tích | CN | Spin | rcrystal (pm) | Nguồn gốc |
|---|---|---|---|---|
| 2 | VI | 93 | ||
| 3 | VI | 78 | from r^3 vs V plots, | |
| 4 | V | 67 | ||
| 4 | VI | 72 | from r^3 vs V plots, | |
| 4 | VIII | 86 | estimated, | |
| 5 | IV | 49,5 | from r^3 vs V plots, | |
| 5 | V | 60 | ||
| 5 | VI | 68 |
Các kiểu phân rã đồng vị (52)
| Đồng vị | Chế độ | Cường độ |
|---|---|---|
| 39 | p | — |
| 40 | p | — |
| 41 | p | — |
| 42 | p | — |
| 43 | B+ | 100% |
| 43 | B+p | 2,5% |
| 44 | B+ | 100% |
| 44 | B+A | — |
| 44 | B+p | — |
| 45 | B+ | 100% |
Hệ số tán xạ tia X (504)
| Năng lượng (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 1,06459 |
| 10,1617 | — | 1,11805 |
| 10,3261 | — | 1,17419 |
| 10,4931 | — | 1,23315 |
| 10,6628 | — | 1,29507 |
| 10,8353 | — | 1,3601 |
| 11,0106 | — | 1,42839 |
| 11,1886 | — | 1,50012 |
| 11,3696 | — | 1,57258 |
| 11,5535 | — | 1,6378 |
Dữ liệu bổ sung
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
1.20×102 milligrams per kilogram
Tài liệu tham khảo (1)
- [5] Vanadium https://education.jlab.org/itselemental/ele023.html
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
2.5×10-3 milligrams per liter
Tài liệu tham khảo (1)
- [5] Vanadium https://education.jlab.org/itselemental/ele023.html
Sources
Sources of this element.
Vanadium is found in about 65 different minerals among which are carnotite, roscoelite, vanadinite, and patronite, important sources of the metal. Vanadium is also found in phosphate rock and certain iron ores, and is present in some crude oils in the form of organic complexes. It is also found in small percentages in meteorites.
Commercial production from petroleum ash holds promise as an important source of the element. High-purity ductile vanadium can be obtained by reduction of vanadium trichloride with magnesium or with magnesium-sodium mixtures.
Much of the vanadium metal being produced is now made by calcium reduction of V2O5 in a pressure vessel, an adaption of a process developed by McKechnie and Seybair.
Tài liệu tham khảo (1)
- [6] Vanadium https://periodic.lanl.gov/23.shtml
Tài liệu tham khảo
(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 Vanadium.
The element property data was retrieved from publications.

