Ni-Decorated PtS2 Monolayer as a Strain-Modulated and Outstanding Sensor upon Dissolved Gases in Transformer Oil: A First-Principles Study

被引:6
|
作者
Xu, Zhuoli [1 ]
机构
[1] Hubei Univ Technol, Hubei Engn Res Ctr Safety Monitoring New Energy &, Wuhan 430068, Peoples R China
来源
ACS OMEGA | 2023年
基金
中国国家自然科学基金;
关键词
OPTICAL-FIBER SENSOR; MOS2; MONOLAYER; INN MONOLAYER; ADSORPTION; PD; DFT; AU; PRISTINE; HYDROGEN; NO2;
D O I
10.1021/acsomega.3c00022
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The first-principles theory is conducted in this paper to investigate the adsorption and electronic properties of a Ni-decorated PtS2 (Ni-PtS2) monolayer upon two dissolved gas species (CO and C2H2) in the transformer oil, thus illustrating its sensing performance and related potential to evaluate the working condition of the oil-immersed transformers. We then highlight the effect of the biaxial strain on the configuration, charge transfer, and bandgap of the adsorbed systems to expound its potential as a strain-modulated gas sensor. Results indicate that the Ni-PtS2 monolayer undergoes chemisorption upon two species, with an Ead value of -1.78 eV for the CO system and -1.53 eV for the C2H2 system. The reduced bandgap by 0.164 eV (20.05%) in the CO system and 0.047 eV (5.74%) in the C2H2 system imply the large feasibility of the Ni-PtS2 monolayer to be a resistance-type sensor for CO and C2H2 detection, which is also verified by the I-V analysis of these systems. Besides, the applied biaxial strain can exert geometric activations on the Ni-PtS2 monolayer, and specifically, the compressive force can further reduce the bandgap in two systems, thus promoting its sensing response upon two gases. Our work is meaningful to broaden the exploration of noble transition metal dichalcogenides for gas sensing.
引用
收藏
页码:6090 / 6098
页数:9
相关论文
共 43 条
  • [1] First-principles study of molecule adsorption on Ni-decorated monolayer MoS2
    Barzegar, Maryam
    Berahman, Masoud
    Asgari, Reza
    JOURNAL OF COMPUTATIONAL ELECTRONICS, 2019, 18 (03) : 826 - 835
  • [2] First-principles study of molecule adsorption on Ni-decorated monolayer MoS2
    Maryam Barzegar
    Masoud Berahman
    Reza Asgari
    Journal of Computational Electronics, 2019, 18 : 826 - 835
  • [3] Single Ni atom doped WS2 monolayer as sensing substrate for dissolved gases in transformer oil: A first-principles study
    Chen, Dachang
    Li, Yi
    Xiao, Song
    Yang, Caixia
    Zhou, Jin
    Xiao, Beibei
    APPLIED SURFACE SCIENCE, 2022, 579
  • [4] Effects of Biaxial Strain on the Optical and Electronic Properties of Monolayer PtS2 with Sulfur Defects: A First-Principles Study
    Yang, Hang
    Yang, Lu
    Bao, Jinlin
    PHYSICA STATUS SOLIDI B-BASIC SOLID STATE PHYSICS, 2025,
  • [5] Sensing behavior of Cu-embedded C3N monolayer upon dissolved gases in transformer oil: a first-principles study
    Wen Cao
    Chunmei Liu
    Pengfei Jia
    Hao Cui
    Carbon Letters, 2021, 31 : 489 - 496
  • [6] Sensing behavior of Cu-embedded C3N monolayer upon dissolved gases in transformer oil: a first-principles study
    Cao, Wen
    Liu, Chunmei
    Jia, Pengfei
    Cui, Hao
    CARBON LETTERS, 2021, 31 (03) : 489 - 496
  • [7] First-principles study on the strain-modulated structure and electronic properties of janus tin oxide selenide monolayer
    Guo, Gang
    Min, Jiewen
    Xie, Zhongxiang
    Wu, Hao
    Zhang, Yong
    MICRO AND NANOSTRUCTURES, 2022, 166
  • [8] Dissolved gas analysis in transformer oil using Pd catalyst decorated MoSe2 monolayer: A first-principles theory
    Cui, Hao
    Chen, Dachang
    Zhang, Ying
    Zhang, Xiaoxing
    SUSTAINABLE MATERIALS AND TECHNOLOGIES, 2019, 20
  • [9] Electronic and optical properties of sulfur vacancy-defect monolayer PtS2: A first-principles study
    Ji, Yanju
    Liu, Yifan
    Xu, Yuanfeng
    Liu, Liqiang
    Chen, Ying
    MATERIALS CHEMISTRY AND PHYSICS, 2020, 255
  • [10] Effect of strain on the thermoelectric properties of three-dimensional PtS2: A first-principles study
    Liang, Xiao-Chong
    Hao, Yan-Jun
    Zhu, Jun
    Guo, Hua-Zhong
    INTERNATIONAL JOURNAL OF QUANTUM CHEMISTRY, 2023, 123 (10)