Photovoltaic induced self-powered gas sensor based on 2D MoS2 incorporated NbSe2 nanorods heterostructure for NH3 gas sensing at room temperature

异质结 材料科学 光伏系统 光电探测器 光电子学 光电效应 纳米技术 纳米结构 电气工程 工程类
作者
Adhimoorthy Saravanan,Bohr‐Ran Huang,Seung‐Kyu Hwang,Deepa Kathiravan,Wesley Wei‐Wen Hsiao,Ravichandran Jayachitra,Abebaw Abun,Po‐Da Hong,Ali Mohammadi,A.T. Ezhil Vilian,Young‐Kyu Han,Yun Suk Huh
出处
期刊:Chemical Engineering Journal [Elsevier]
卷期号:491: 151795-151795 被引量:1
标识
DOI:10.1016/j.cej.2024.151795
摘要

Two-dimensional (2D) transition metal dichalcogenides (TMDs) have attracted significant attention for their optical and gas-sensing applications due to their exceptional sensitivity. Reliable selectivity and low power consumption are two major requirements for photodetector and gas sensor applications in next-generation electronic devices and the Internet of Things. Self-powered sensors (especially photovoltaic gas sensors) can solve these problems. In this study, for the first time, we report 2D TMDs (NbSe2-MoS2 hybrid) on a SiO2/Si substrate to fabricate photovoltaic self-powered gas sensors. The gas sensors are operated by the photovoltaic effect of the NbSe2-MoS2 nanostructure, which is prepared using the liquid phase exfoliation process. Initially, it was revealed that the present hybrid material exhibits photovoltaic properties under light illumination, with a circuit current of 0.25 µA and a circuit voltage of 34 mV. The NbSe2-MoS2 nanostructure characteristics were then used for NH3 gas sensing at different concentrations, and the gas sensing response was detected from low (8.8 % at 10 ppm) to high (28.8 % at 500 ppm) concentrations. The built-in electric field occurred between the NbSe2-MoS2 junction and eventually operated as a driving force for NbSe2-MoS2 gas sensing without an external bias voltage. The physisorption of gas molecules on their surface prompts a charge-transfer mechanism that improves the gas sensor response. The combined outcome of NbSe2-MoS2 heterostructures could pave way to next-generation gas sensing device fabrications.
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