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钨取代二氧化钒(V[化学式:见原文]W[化学式:见原文]O[化学式:见原文])的局部结构解析

Local structure elucidation of tungsten-substituted vanadium dioxide (V[Formula: see text]W[Formula: see text]O[Formula: see text]).

作者信息

Wilson Catrina E, Gibson Amanda E, Cuillier Paul M, Li Cheng-Han, Crosby Patrice H N, Trigg Edward B, Najmr Stan, Murray Christopher B, Jinschek Joerg R, Doan-Nguyen Vicky

机构信息

Materials Science and Engineering, Ohio State University, Columbus, OH 43212 USA.

Chemistry, Ohio State University, Columbus, OH 43212 USA.

出版信息

Sci Rep. 2022 Aug 30;12(1):14767. doi: 10.1038/s41598-022-18575-0.

Abstract

Initially, vanadium dioxide seems to be an ideal first-order phase transition case study due to its deceptively simple structure and composition, but upon closer inspection there are nuances to the driving mechanism of the metal-insulator transition (MIT) that are still unexplained. In this study, a local structure analysis across a bulk powder tungsten-substitution series is utilized to tease out the nuances of this first-order phase transition. A comparison of the average structure to the local structure using synchrotron x-ray diffraction and total scattering pair-distribution function methods, respectively, is discussed as well as comparison to bright field transmission electron microscopy imaging through a similar temperature-series as the local structure characterization. Extended x-ray absorption fine structure fitting of thin film data across the substitution-series is also presented and compared to bulk. Machine learning technique, non-negative matrix factorization, is applied to analyze the total scattering data. The bulk MIT is probed through magnetic susceptibility as well as differential scanning calorimetry. The findings indicate the local transition temperature ([Formula: see text]) is less than the average [Formula: see text] supporting the Peierls-Mott MIT mechanism, and demonstrate that in bulk powder and thin-films, increasing tungsten-substitution instigates local V-oxidation through the phase pathway VO[Formula: see text] V[Formula: see text]O[Formula: see text] V[Formula: see text]O[Formula: see text].

摘要

最初,二氧化钒似乎是一个理想的一级相变案例研究对象,因为其结构和组成看似简单,但仔细研究后发现,金属-绝缘体转变(MIT)的驱动机制存在一些细微差别,仍无法解释。在本研究中,通过对一系列体相粉末钨取代样品进行局部结构分析,以梳理出这种一级相变的细微差别。分别使用同步加速器X射线衍射和总散射对分布函数方法,将平均结构与局部结构进行比较,并与通过与局部结构表征相似的温度序列的明场透射电子显微镜成像进行比较。还给出了整个取代系列薄膜数据的扩展X射线吸收精细结构拟合,并与体相进行比较。应用机器学习技术——非负矩阵分解来分析总散射数据。通过磁化率和差示扫描量热法对体相MIT进行探测。研究结果表明,局部转变温度([公式:见原文])低于平均[公式:见原文],这支持了派尔斯-莫特MIT机制,并表明在体相粉末和薄膜中,增加钨取代会通过VO[公式:见原文]V[公式:见原文]O[公式:见原文]V[公式:见原文]O[公式:见原文]的相途径引发局部V氧化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1bee/9428210/d39c757b9658/41598_2022_18575_Fig1_HTML.jpg

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