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电化学诱导二氧化钒纳米晶的转变。

Electrochemically Induced Transformations of Vanadium Dioxide Nanocrystals.

机构信息

McKetta Department of Chemical Engineering, The University of Texas at Austin , Austin, Texas 78712, United States.

Department of Materials Science and Engineering, University of California , Berkeley, California 94720, United States.

出版信息

Nano Lett. 2016 Oct 12;16(10):6021-6027. doi: 10.1021/acs.nanolett.6b01756. Epub 2016 Sep 30.

Abstract

Vanadium dioxide (VO) undergoes significant optical, electronic, and structural changes as it transforms between the low-temperature monoclinic and high-temperature rutile phases. Recently, alternative stimuli have been utilized to trigger insulator-to-metal transformations in VO, including electrochemical gating. Here, we prepare and electrochemically reduce mesoporous films of VO nanocrystals, prepared from colloidally synthesized VO nanocrystals that have been oxidatively annealed, in a three-electrode electrochemical cell. We observe a reversible transition between infrared transparent insulating phases and a darkened metallic phase by in situ visible-near-infrared spectroelectrochemistry and correlate these observations with structural and electronic changes monitored by X-ray absorption spectroscopy, X-ray diffraction, Raman spectroscopy, and conductivity measurements. An unexpected reversible transition from conductive, reduced monoclinic VO to an infrared-transparent insulating phase upon progressive electrochemical reduction is observed. This insulator-metal-insulator transition has not been reported in previous studies of electrochemically gated epitaxial VO films and is attributed to improved oxygen vacancy formation kinetics and diffusion due to the mesoporous nanocrystal film structure.

摘要

氧化钒(VO)在低温单斜相与高温金红石相之间转变时,会发生显著的光学、电子和结构变化。最近,人们利用电化学门控等替代刺激来触发 VO 的绝缘到金属转变。在这里,我们在三电极电化学池中制备并电化学还原由胶体合成的 VO 纳米晶经氧化退火得到的介孔 VO 纳米晶薄膜。我们通过原位可见-近红外光谱电化学观察到在红外透明绝缘相与变暗的金属相之间的可逆转变,并通过 X 射线吸收光谱、X 射线衍射、拉曼光谱和电导率测量来关联这些观察结果与结构和电子变化。我们观察到一个意想不到的可逆转变,即从导电、还原的单斜 VO 转变为红外透明的绝缘相,这是在逐步电化学还原过程中发生的。这种绝缘-金属-绝缘转变在以前关于电化学门控外延 VO 薄膜的研究中并未报道过,这归因于介孔纳米晶薄膜结构改善了氧空位的形成动力学和扩散。

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