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Adsorption of SF6 decomposed gas on anatase (101) and (001) surfaces with oxygen defect: A density functional theory study

机译:具有氧缺陷的锐钛矿(101)和(001)表面上SF6分解气体的吸附:密度泛函理论研究

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摘要

The detection of partial discharge by analyzing the components of SF6 gas in gas-insulated switchgears is important to the diagnosis and assessment of the operational state of power equipment. A gas sensor based on anatase TiO2 is used to detect decomposed gases in SF6. In this paper, first-principle density functional theory calculations are adopted to analyze the adsorption of SO2, SOF2, and SO2F2, the primary decomposition by-products of SF6 under partial discharge, on anatase (101) and (001) surfaces. Simulation results show that the perfect anatase (001) surface has a stronger interaction with the three gases than that of anatase (101), and both surfaces are more sensitive and selective to SO2 than to SOF2 and SO2F2. The selection of a defect surface to SO2, SOF2, and SO2F2 differs from that of a perfect surface. This theoretical result is corroborated by the sensing experiment using a TiO2 nanotube array (TNTA) gas sensor. The calculated values are analyzed to explain the results of the Pt-doped TNTA gas sensor sensing experiment. The results imply that the deposited Pt nanoparticles on the surface increase the active sites of the surface and the gas molecules may decompose upon adsorption on the active sites.
机译:通过分析气体绝缘开关设备中SF6气体的成分来检测局部放电对于诊断和评估电力设备的运行状态非常重要。基于锐钛矿型TiO2的气体传感器用于检测SF6中的分解气体。本文采用第一原理密度泛函理论计算方法分析了部分放电下SF6的主要分解副产物SO2,SOF2和SO2F2在锐钛矿(101)和(001)表面的吸附。模拟结果表明,与锐钛矿(101)相比,理想的锐钛矿(001)表面与三种气体之间的相互作用更强,并且两个表面对SO2的敏感性和选择性均高于对SOF2和SO2F2的选择性。 SO2,SOF2和SO2F2的缺陷表面的选择与理想表面的选择不同。使用TiO 2 纳米管阵列(TNTA)气体传感器的传感实验证实了这一理论结果。分析计算值以解释掺杂Pt的TNTA气体传感器传感实验的结果。结果暗示在表面上沉积的Pt纳米颗粒增加了表面的活性位点,并且气体分子在吸附到活性位点上时可能分解。

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