Optically Programmable Smart WSe<sub>2</sub>/hBN Heterostructure Gas Sensors
Article 2025 en
Authors
AA
Ayaz Ali
PB
Prashant Bisht
MS
Matthias Schrade
Abstract
1 min read
Highly sensitive and energy-efficient gas sensors are essential for real-time environmental monitoring and air quality assessment. In this work, we present an optically programmable gas sensor based on WSe<sub>2</sub>/hBN heterostructure transistors for NO<sub><i>x</i></sub> detection. The hBN interfacial layer enhances device performance by reducing charge trapping and improving transport, enabling the WSe<sub>2</sub>/hBN configuration to achieve a higher sensing response and faster recovery than WSe<sub>2</sub>/SiO<sub>2</sub> devices. To understand the sensing mechanism, in situ Kelvin probe force microscopy (KPFM) was used, revealing that NO<sub><i>x</i></sub> adsorption at the metal/semiconductor interface modulates the Schottky barrier height (SBH), which governs charge transport and gas sensitivity. Furthermore, we demonstrate that UV-induced charge modulation allows dynamic control of the sensor response, offering a tunable and reversible method for optimizing gas detection. This study highlights the potential of heterostructure engineering and optoelectronic modulation in developing next-generation, low-power, smart gas sensors for environmental monitoring applications.
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