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2D PtSe<sub>2</sub> Enabled Wireless Wearable Gas Monitoring Circuits with Distinctive Strain-Enhanced Performance
39
Citations
38
References
2023
Year
The application of 2D materials-based flexible electronics in wearable scenarios is limited due to performance degradation under strain fields. In contrast to its negative role in existing transistors or sensors, herein, we discover a positive effect of strain to the ammonia detection in 2D PtSe<sub>2</sub>. Linear modulation of sensitivity is achieved in flexible 2D PtSe<sub>2</sub> sensors via a customized probe station with an in situ strain loading apparatus. For trace ammonia absorption, a 300% enhancement in room-temperature sensitivity (31.67% ppm<sup>-1</sup>) and an ultralow limit of detection (50 ppb) are observed under 1/4 mm<sup>-1</sup> curvature strain. We identify three types of strain-sensitive adsorption sites in layered PtSe<sub>2</sub> and pinpoint that basal-plane lattice distortion contributes to better sensing performance resulting from reduced absorption energy and larger charge transfer density. Furthermore, we demonstrate state-of-the-art 2D PtSe<sub>2</sub>-based wireless wearable integrated circuits, which allow real-time gas sensing data acquisition, processing, and transmission through a Bluetooth module to user terminals. The circuits exhibit a wide detection range with a maximum sensitivity value of 0.026 V·ppm<sup>-1</sup> and a low energy consumption below 2 mW.
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