Adsorption and Sensing Mechanisms of Transformer Dissolved Gases on Transition Metal-Doped MoTe 2 Monolayers: A DFT Study

吸附 溶解气体分析 掺杂剂 材料科学 兴奋剂 变压器油 过渡金属 密度泛函理论 变压器 金属 化学物理 电压 功率密度 化学工程 分析化学(期刊) 结合能 化学 带隙 相变 电荷密度 工作(物理) 无机化学 杂质
作者
Pengfei Jia,Wenwen Jiang,Zexuan Wang,Yujie Chen,Jianjun Cao,Xusheng Zhou,Yiyi Zhang,Kuoteng Sun,Xianfu Lin
出处
期刊:Langmuir [American Chemical Society]
卷期号:42 (7): 5779-5792 被引量:2
标识
DOI:10.1021/acs.langmuir.5c06353
摘要

Oil-immersed transformers are essential components for voltage transformation and energy delivery within power systems, with their operating condition having a direct influence on the reliability and stability of the grid. During prolonged operation, multiple stresses─electrical, thermal, and mechanical─gradually degrade insulating oil and solid insulating materials, generating dissolved gases (H 2, CH 4, C 2 H 2, C 2 H 4 ). Monitoring the types and concentrations of these characteristic gases enables timely identification and condition evaluation of internal faults in transformers. MoTe 2 shows broad application prospects in gas sensing. However, its intrinsic structure exhibits limited adsorption capacity for these four gas molecules. To enhance its sensing performance, this work systematically explored how transition metal (Au, Ir, Pd, Ti) doping influences the properties of single-layer MoTe 2 in detecting transformer fault characteristic gases, using first-principles density functional theory (DFT). Structural stability was evaluated through binding energy calculations, while adsorption mechanisms were analyzed using adsorption energy, charge transfer, and density of states (DOS) studies. The findings reveal that introducing metal dopants markedly improves MoTe 2 ‘s ability to adsorb and its electronic response characteristics toward gas molecules. Specifically, Au-MoTe 2 exhibited recovery times of 0.44 and 2.15 s for detecting C 2 H 2 and C 2 H 4, respectively, and demonstrated a significant bandgap modulation effect, while Ti-MoTe 2 exhibited substantial bandgap shifts (−18.9% and −462.21%) during H 2 and CH 4 detection, demonstrating high sensitivity and responsiveness. All demonstrate tremendous potential as gas-sensitive materials for their respective gases. This work elucidates the modulation mechanism of transition metal doping in MoTe 2, providing theoretical guidance for designing high-performance materials for dissolved gas detection in transformer oil.
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