首页> 美国卫生研究院文献>Nanomaterials >First-Principles Study of Au-Doped InN Monolayer as Adsorbent and Gas Sensing Material for SF6 Decomposed Species
【2h】

First-Principles Study of Au-Doped InN Monolayer as Adsorbent and Gas Sensing Material for SF6 Decomposed Species

机译:Au-掺杂Inn单层作为SF6分解物种的吸附剂和气体传感材料的第一原理研究

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

As an insulating medium, sulfur hexafluoride (SF6) is extensively applied to electrical insulation equipment to ensure its normal operation. However, both partial discharge and overheating may cause SF6 to decompose, and then the insulation strength of electrical equipment will be reduced. The adsorption properties and sensing mechanisms of four SF6 decomposed components (HF, SO2, SOF2 and SO2F2) upon an Au-modified InN (Au-InN) monolayer were studied in this work based on first-principles theory. Meanwhile, the adsorption energy (Ead), charge transfer (QT), deformation charge density (DCD), density of states (DOS), frontier molecular orbital and recovery property were calculated. It can be observed that the structures of the SO2, SOF2 and SO2F2 molecules changed significantly after being adsorbed. Meanwhile, the Ead and QT of these three adsorption systems are relatively large, while that of the HF adsorption system is the opposite. These phenomena indicate that Au-InN monolayer has strong adsorption capacity for SO2, SOF2 and SO2F2, and the adsorption can be identified as chemisorption. In addition, through the analysis of frontier molecular orbital, it is found that the conductivity of Au-InN changed significantly after adsorbing SO2, SOF2 and SO2F2. Combined with the analysis of the recovery properties, since the recovery time of SO2 and SO2F2 removal from Au-InN monolayer is still very long at 418 K, Au-InN is more suitable as a scavenger for these two gases rather than as a gas sensor. Since the recovery time of the SOF2 adsorption system is short at 418 K, and the conductivity of the system before and after adsorption changes significantly, Au-InN is an ideal SOF2 gas-sensing material. These results show that Au-InN has broad application prospects as an SO2, SOF2 and SO2F2 scavenger and as a resistive SOF2 sensor, which is of extraordinary meaning to ensure the safe operation of power systems. Our calculations can offer a theoretical basis for further exploration of gas adsorbent and resistive sensors prepared by Au-InN.
机译:作为绝缘介质,六氟化硫(SF6)被广泛地应用于电绝缘设备,以确保其正常运行。然而,局部放电和过热都可能导致SF6分解,然后电气设备的绝缘强度将减小。基于第一原理理论,在这项工作中研究了四种SF6分解组分(HF,SO2,SOF2和SO2F2)的SF6分解组分(HF,SO2,SOF2和SO2F2)的吸附性能和感测机制。同时,计算吸附能量(EAD),电荷转移(QT),变形电荷密度(DCD),状态密度(DOS),前沿分子轨道和回收性能。可以观察到SO2,SOF2和SO2F2分子的结构在吸附后显着变化。同时,这三种吸附系统的EAD和QT相对较大,而HF吸附系统的QT是相反的。这些现象表明,Au-Inn单层具有强大的吸附能力,用于SO2,SOF2和SO2F2,并且可以将吸附鉴定为化学吸附。此外,通过分析前部分子轨道,发现Au-Inn在吸附SO2,SOF2和SO2F2后显着改变Au-Inn的导电性。结合回收性质的分析,由于SO2和SO2F2的恢复时间从Au-Inn Monolayer仍然处于418K的情况下仍然很长,因此Au-Inn更适合于这两个气体的清除剂而不是气体传感器。由于SOF2吸附系统的恢复时间短418K,并且系统在吸附之前和之后的系统的电导率显着变化,Au-Inn是理想的SOF2气体传感材料。这些结果表明,AU-Inn具有广泛的应用前景,作为SO2,SOF2和SO2F2清除剂,作为电阻SOF2传感器,其具有非凡的意义,可以确保动力系统的安全操作。我们的计算可以为Au-Inn准备的气体吸附剂和电阻传感器提供理论依据。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号