Kumar Utkarsh, Huang Shih-Ming, Deng Zu-Yin, Yang Cheng-Xin, Haung Wen-Min, Wu Chiu-Hsien
Department of Physics, National Chung Hsing University, Taichung 402, Taiwan.
Institute of Nanoscience, National Chung Hsing University, Taichung 402, Taiwan.
Nanotechnology. 2021 Dec 16;33(10). doi: 10.1088/1361-6528/ac3e2f.
By experimental and density functional theory calculations, the toxic gases (Oand NO) sensing capability and mechanism of ZnO NRs and Ag/ZnO NRs have been comparatively studied in this work. Ag NPs arrays were employed for the growth of ZnO NRs. The experimental results show that when ZnO NRs are grown on Ag NPs, the response and adsorption rate towards the gases change significantly. The TDOS plot shows that the HOMO-LUMO gap changes after interaction with different oxidizing gases, and the peak intensity also decreases confirming the electron are transferred from ZnO to NOand O. The response to gases decreases and the adsorption reaction rate increases in Ag/ZnO NRs, as calculated by the Eyring-Polanyi equation, which is very similar to our experimental data. We also find that the absorption coefficient is different for Oand NO. Finally, experimental response and theoretical results were compared and found to be in good agreement.
通过实验和密度泛函理论计算,本文对ZnO纳米棒(NRs)和Ag/ZnO NRs的有毒气体(O和NO)传感能力及机理进行了比较研究。采用Ag纳米颗粒阵列来生长ZnO NRs。实验结果表明,当ZnO NRs生长在Ag纳米颗粒上时,对气体的响应和吸附速率会发生显著变化。TDOS图显示,与不同氧化气体相互作用后,HOMO-LUMO能隙发生变化,且峰强度也降低,这证实了电子从ZnO转移到NO和O。根据艾林-波兰尼方程计算,Ag/ZnO NRs对气体的响应降低而吸附反应速率增加,这与我们的实验数据非常相似。我们还发现,O和NO的吸收系数不同。最后,将实验响应与理论结果进行比较,发现两者吻合良好。