Liu Yan, Liu Jianben, Wei Zhuo, Yuan Tian, Cui Hao
State Key Laboratory of Power Grid Environmental Protection, China Electric Power Research Institute, Wuhan 430074, China.
China Electric Power Research Institute, Wuhan 430074, China.
ACS Omega. 2023 Nov 27;8(49):47067-47074. doi: 10.1021/acsomega.3c06980. eCollection 2023 Dec 12.
This work, using the first-principles theory, uses the Ni-decorated WSe (Ni-WSe) monolayer as a novel gas sensing material upon CO and HCHO in the dry-type transformers in order to evaluate their operation status. Results indicate that the Ni atom can be stably adsorbed on the T site of the pristine WSe monolayer with the binding force of -4.33 eV. Via the gas adsorption analysis, it is found that the Ni-WSe monolayer performs chemisorption upon CO and HCHO molecules, with adsorption energies of -2.27 and -1.37 eV, respectively. The analyses of the band structure and Frontier molecular orbital manifest the potential of the Ni-WSe monolayer as a resistance-type gas sensor upon CO and HCHO, with sensing responses of 55.9 and 30.9% based on the band gap change and of 55.0 and 38.5% based on the energy gap change. The analysis of the density of state clearly shows the modified electronic property of the Ni-WSe monolayer in gas adsorptions. On the other hand, the analysis of the work function (WF) reveals the limited possibility to explore the Ni-WSe monolayer as a WF-based gas sensor for CO and HCHO detections. This work systemically studies the sensing potential of the Ni-WSe monolayer upon two typical gas species in the dry-type transformers, which is meaningful to explore novel nanomaterial-based gas sensors to monitor the operation condition of electrical equipment.
这项工作采用第一性原理理论,将镍修饰的WSe(Ni-WSe)单层作为一种新型气体传感材料,用于检测干式变压器中的一氧化碳和甲醛,以评估其运行状态。结果表明,镍原子能够以-4.33 eV的结合力稳定吸附在原始WSe单层的T位上。通过气体吸附分析发现,Ni-WSe单层对一氧化碳和甲醛分子进行化学吸附,吸附能分别为-2.27和-1.37 eV。能带结构和前沿分子轨道分析表明,Ni-WSe单层作为一氧化碳和甲醛的电阻型气体传感器具有潜力,基于带隙变化的传感响应分别为55.9%和30.9%,基于能隙变化的传感响应分别为55.0%和38.5%。态密度分析清楚地表明了Ni-WSe单层在气体吸附中的电子性质变化。另一方面,功函数(WF)分析表明,将Ni-WSe单层作为基于功函数的一氧化碳和甲醛检测气体传感器的可能性有限。这项工作系统地研究了Ni-WSe单层对干式变压器中两种典型气体的传感潜力,这对于探索基于新型纳米材料的气体传感器来监测电气设备的运行状况具有重要意义。