Vanadium(IV) oxide
Names | |
---|---|
IUPAC name
Vanadium(IV) oxide | |
Other names
Vanadium dioxide Vanadium tetroxide | |
Identifiers | |
12036-21-4 | |
PubChem | 82849 |
Properties | |
VO2 | |
Molar mass | 82.94 g/mol |
Appearance | Deep Blue Powder |
Density | 4.571 g/cm3 (monoclinic) 4.653 g/cm3 (tetragonal) |
Melting point | 1,967 °C |
Structure | |
Distorted rutile (<70 °C, monoclinic) Rutile (>70 °C, tetragonal) | |
Hazards | |
R-phrases | 36/37/38 |
S-phrases | 26-36/37/39 |
NFPA 704 | |
Flash point | Non-flammable |
Related compounds | |
Other anions |
Vanadium disulfide Vanadium diselenide Vanadium ditelluride |
Other cations |
Niobium(IV) oxide Tantalum(IV) oxide |
Vanadium(II) oxide Vanadium(III) oxide Vanadium(V) oxide | |
Except where otherwise noted, data are given for materials in their standard state (at 25 °C [77 °F], 100 kPa). | |
verify (what is ?) | |
Infobox references | |
Vanadium(IV) dioxide is the inorganic compound with the formula VO2. It is a dark blue solid. Vanadium(IV) dioxide is amphoteric, dissolving in non-oxidising acids to give the blue vanadyl ion, [VO]2+ and in alkali to give the brown [V4O9]2− ion, or at high pH [VO4]4−.[1] VO2 has a phase transition very close to room temperature(~66 °C). Electrical resistivity, opacity, etc, can change up several orders. Due to this properties, it has been widely used in surface coating,[2] sensor,[3] imaging.[4] The potential application including memory device.[5]
Properties
Structure
The phase transition is a first order transition. When temperature belows 340K, the VO
2 is in monoclinic P21/c phase. The characteristics of this phase is the V4+ pairs in c axis have alternate separations of 2.65Å and 3.12Å. Compared with the rutile metal phase when temperature bellows 340K, the V4+ pairs has a fixed separation of 2.96Å. As shown in figure below, left is monoclinic phase, right subfigure is rutile phase. The structures difference causes the number of V4+ in a unit cell more than doubled from metal phase to insulator phase.
Electronic
The optical band gap study show at insulating phase, the band gap of VO2 is about 0.7 eV, at metallic phase, the band gap is 0.2 eV.[6] Vanandium (IV) Oxide transitions from a monoclinic to tetragonal structure at 340K, together with changes in interatomic Vanadium-Vanadium bonding type at the same temperature.[7]
Synthesis and structure
Following the method described by Berzelius, VO
2 is prepared by comproportionation of vanadium(III) oxide and vanadium(V) oxide:[8]
- V
2O
5 + V
2O
3 → 4 VO
2
At room temperature VO2 has a distorted rutile structure with shorter distances between pairs of V atoms indicating metal-metal bonding. Above 68 °C the structure changes to an undistorted rutile structure and the metal-metal bonds are broken causing an increase in electrical conductivity and magnetic susceptibility as the bonding electrons are "released".[1][9] The origin of this insulator to metal transition remains controversial and is of interest in condensed matter physics.
Infrared reflectance
VO
2 expresses temperature-dependent reflective properties. When heated from room temperature to 80 °C, the material's thermal radiation rises normally until 74 °C, before suddenly appearing to drop around 20 °C. At room temperature VO
2 is almost transparent to infrared light. As its temperature rises it gradually changes to reflective. At intermediate temperatures it behaves as a highly absorbing dielectric.[10][11]
A thin film
of vanadium oxide on a highly reflecting substrate (for specific infrared wavelengths) such as sapphire is either absorbing or reflecting, dependent on temperature. Its emissivity varies considerably with temperature. When the vanadium oxide transitions with increased temperature, the structure undergoes a sudden decrease in emissivity – looking colder to infrared cameras than it really is.[10]
Varying the substrate materials e.g., to indium tin oxide, and modifying the vanadium oxide coating using doping, straining and other processes, alter the wavelengths and temperature ranges at which the thermal effects are observed.[10]
Nanoscale structures that appear naturally in the materials' transition region can suppress thermal radiation as the temperature rises. Doping the coating with tungsten lowers the effect's thermal range to room temperature.[10]
Uses
Infrared radiation management
1.9% tungsten-doped material content has been investigated for use as a "spectrally-selective" window coating to block infrared transmission and reduce the loss of building interior heat through windows.[12][13] Varying the amount of tungsten allows regulating the phase transition temperature. The coating has a slight yellow-green color.[14]
Other potential applications of its thermal properties include passive camouflage, thermal beacons, communication or to deliberately speed up or slow down cooling – which could be useful in a variety of structures from homes to satellites.[10]
Vanadium dioxide can act as extremely fast optical shutters, optical modulators, infrared modulators for missile guidance systems, cameras, data storage, and other applications. The thermochromic phase transition between the transparent semiconductive and reflective conductive phase, occurring at 68 °C, can happen in times as short as 100 femtoseconds.[15]
Phase change computing and memory
The insulator-metal phase transition in VO2 can be manipulated at the nanoscale using a biased conducting atomic force microscope tip,[16] suggesting applications in computing and information storage.[17]
See also
References
- 1 2 Greenwood, Norman N.; Earnshaw, Alan (1984). Chemistry of the Elements. Oxford: Pergamon Press. pp. 1144–45. ISBN 0-08-022057-6.
- ↑ Li, Yamei; Ji, Shidong; Gao, Yanfeng; Luo, Hongjie; Kanehira, Minoru (2013-04-02). "Core-shell VO2@TiO2 nanorods that combine thermochromic and photocatalytic properties for application as energy-saving smart coatings". Scientific Reports 3. doi:10.1038/srep01370. PMC 3613806. PMID 23546301.
- ↑ Hu, Bin; Ding, Yong; Chen, Wen; Kulkarni, Dhaval; Shen, Yue; Tsukruk, Vladimir V.; Wang, Zhong Lin (2010-12-01). "External-Strain Induced Insulating Phase Transition in VO2 Nanobeam and Its Application as Flexible Strain Sensor". Advanced Materials 22 (45): 5134–5139. doi:10.1002/adma.201002868. ISSN 1521-4095.
- ↑ Gurvitch, M.; Luryi, S.; Polyakov, A.; Shabalov, A. (2009-11-15). "Nonhysteretic behavior inside the hysteresis loop of VO2 and its possible application in infrared imaging". Journal of Applied Physics 106 (10): 104504. doi:10.1063/1.3243286. ISSN 0021-8979.
- ↑ Xie, Rongguo; Bui, Cong Tinh; Varghese, Binni; Zhang, Qingxin; Sow, Chorng Haur; Li, Baowen; Thong, John T. L. (2011-05-10). "An Electrically Tuned Solid-State Thermal Memory Based on Metal–Insulator Transition of Single-Crystalline VO2 Nanobeams". Advanced Functional Materials 21 (9): 1602–1607. doi:10.1002/adfm.201002436. ISSN 1616-3028.
- ↑ Shin, S.; Suga, S.; Taniguchi, M.; Fujisawa, M.; Kanzaki, H.; Fujimori, A.; Daimon, H.; Ueda, Y.; Kosuge, K. "Vacuum-ultraviolet reflectance and photoemission study of the metal-insulator phase transitions in VO 2 , V 6 O 13 , and V 2 O 3". Physical Review B 41 (8): 4993–5009. doi:10.1103/physrevb.41.4993.
- ↑ Goodenough, John B. (1971-11-01). "The two components of the crystallographic transition in VO2". Journal of Solid State Chemistry 3 (4): 490–500. doi:10.1016/0022-4596(71)90091-0.
- ↑ Handbook of Preparative Inorganic Chemistry, 2nd Ed. Edited by G. Brauer, Academic Press, 1963, NY. Vol. 1. p. 1267.
- ↑ http://phys.org/news/2015-04-insulator-to-metal-transition-vanadium-dioxide.html
- 1 2 3 4 5 "Natural metamaterial looks cooler when heated". physicsworld.com. Retrieved 2014-01-01.
- ↑ Kats, M. A.; Blanchard, R.; Zhang, S.; Genevet, P.; Ko, C.; Ramanathan, S.; Capasso, F. (2013). "Vanadium Dioxide as a Natural Disordered Metamaterial: Perfect Thermal Emission and Large Broadband Negative Differential Thermal Emittance". Physical Review X 3 (4). doi:10.1103/PhysRevX.3.041004.
- ↑ "Sol-Gel Vanadium oxide". Solgel.com. Retrieved 2012-09-12.
- ↑ "Intelligent Window Coatings that Allow Light In but Keep Heat Out - News Item". Azom.com. Retrieved 2012-09-12.
- ↑ "Eye on Technology". oe magazine. 2009-11-03. Retrieved 2012-09-12.
- ↑ "Timing nature's fastest optical shutter". Physorg.com. Retrieved 2012-09-12.
- ↑ Jeehoon Kim; Ko, Changhyun; Frenzel, Alex; Ramanathan, Shriram; Hoffman, Jennifer E. (2010). "Nanoscale imaging and control of resistance switching in VO2 at room temperature". Applied Physics Letters 96: 213106. doi:10.1063/1.3435466.
- ↑ Zhou, You; Ramanathan, S. (2015-08-01). "Mott Memory and Neuromorphic Devices". Proceedings of the IEEE 103 (8): 1289–1310. doi:10.1109/JPROC.2015.2431914. ISSN 0018-9219.
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