A hydrothermally synthesized MoS2(1−x)Se2xalloy with deep-shallow level conversion for enhanced performance of photodetectors

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Abstract

Photoelectric detectors based on binary transition metal chalcogenides have attracted widespread attention in recent years. However, due to the high-temperature synthesis of binary TMD, high-density deep-level defect states may be generated, leading to poor responsiveness or a long response time. Besides, the addition of an alloy will change the DLDSs from deep to shallow energy levels caused by S vacancies. In this paper, MoS2(1−x)Se2xnanostructures were synthesized by a hydrothermal method, and a novel type of photodetector was fabricated by using the synthesized material as a light sensitive material. The MoSSe-based photodetector not only has a high photocurrent, but also exhibits a wide spectral response in the range of 405 nm to 808 nm. At the same time, it can achieve a responsivity of 1.753 mA W−1under 660 nm laser irradiation of 1.75 mW mm−2. Therefore, this work can be considered as a method of constructing a new type of photodetector with a simple process and low cost.

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Hou, K., Huang, Z., Liu, S., Liao, G., Qiao, H., Li, H., & Qi, X. (2020). A hydrothermally synthesized MoS2(1−x)Se2xalloy with deep-shallow level conversion for enhanced performance of photodetectors. Nanoscale Advances, 2(5), 2185–2191. https://doi.org/10.1039/d0na00202j

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