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用于纳米光学器件的高红外敏感性VO纳米线。

Highly infrared sensitive VO nanowires for a nano-optical device.

作者信息

Bhuyan Prabal Dev, Gupta Sanjeev K, Kumar Ashok, Sonvane Yogesh, Gajjar P N

机构信息

Computational Materials and Nanoscience Group, Department of Physics and Electronics, St. Xavier's College, Ahmedabad 380009, India.

出版信息

Phys Chem Chem Phys. 2018 Apr 25;20(16):11109-11115. doi: 10.1039/c8cp00318a.

Abstract

Recent studies on the electronic, magnetic and optical properties of VO2 (vanadium dioxide) materials have motivated the exploration of one dimensional VO2 nanowires. First principles calculations were performed to investigate the structural, electronic, magnetic and optical properties of the monoclinic (M) and rutile (R) phases of VO2 nanowires. The monoclinic phase shows semiconducting behaviour with a band gap of 1.17 eV, whereas the rutile phase of VO2 nanowires behaves as a spin gapless semiconducting material, as band lines cross the Fermi level due only to up spin contribution. The monoclinic structure of VO2 nanowires is found to be paramagnetic and the rutile structure shows ferromagnetic half metal behavior. The conductivity calculation for VO2 nanowires shows the metal-insulator transition (MIT) temperature to be 250 K. The possible mechanism of VO2 nanowires to be used as smart windows has been discussed, as the nanowires are highly sensitive in the infrared (IR) region. Interestingly, at low temperature, the VO2 monoclinic structure allows infrared light to be transmitted, while VO2 with the rutile phase blocks light in the IR region. Furthermore, we adsorbed CO2, N2 and SO2 gas molecules on 1D VO2 monoclinic nanowire to investigate their interaction behaviour. It was observed that the absorption and transmission properties of VO2 dramatically change upon the adsorption of CO2 and SO2 gas molecules, which is likely to open up its application as an optical gas sensor.

摘要

最近关于二氧化钒(VO₂)材料的电子、磁性和光学性质的研究激发了对一维VO₂纳米线的探索。进行了第一性原理计算,以研究VO₂纳米线单斜相(M)和金红石相(R)的结构、电子、磁性和光学性质。单斜相表现出半导体行为,带隙为1.17 eV,而VO₂纳米线的金红石相表现为自旋无隙半导体材料,因为能带线仅由于自旋向上的贡献而穿过费米能级。发现VO₂纳米线的单斜结构是顺磁性的,而金红石结构表现出铁磁半金属行为。VO₂纳米线的电导率计算表明金属-绝缘体转变(MIT)温度为250 K。讨论了VO₂纳米线用作智能窗的可能机制,因为纳米线在红外(IR)区域高度敏感。有趣的是,在低温下,VO₂单斜结构允许红外光透射,而具有金红石相的VO₂在IR区域阻挡光。此外,我们将CO₂、N₂和SO₂气体分子吸附在一维VO₂单斜纳米线上,以研究它们的相互作用行为。观察到,VO₂的吸收和透射性质在吸附CO₂和SO₂气体分子后发生显著变化,这可能会开拓其作为光学气体传感器的应用。

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