Te<sub>x</sub> Se<sub>1-x</sub> Photodiode Shortwave Infrared Detection and Imaging.

Fu, Liuchong; He, Yuming; Zheng, Jiajia; Hu, Yuxuan; Xue, Jiayou; Li, Sen; Ge, Ciyu; Yang, Xuke et al. · Adv Mater · 2023

basic_science · Level V

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Abstract

Short-wave infrared detectors are increasingly important in the fields of autonomous driving, food safety, disease diagnosis, and scientific research. However, mature short-wave infrared cameras such as InGaAs have the disadvantage of complex heterogeneous integration with complementary metal-oxide-semiconductor (CMOS) readout circuits, leading to high cost and low imaging resolution. Herein, a low-cost, high-performance, and high-stability Te<sub>x</sub> Se<sub>1-</sub> <sub>x</sub> short-wave infrared photodiode detector is reported. The Te<sub>x</sub> Se<sub>1-</sub> <sub>x</sub> thin film is fabricated through CMOS-compatible low-temperature evaporation and post-annealing process, showcasing the potential of direct integration on the readout circuit. The device demonstrates a broad-spectrum response of 300-1600 nm, a room-temperature specific detectivity of 1.0 × 10<sup>10</sup> Jones, a -3 dB bandwidth up to 116 kHz, and a linear dynamic range of over 55 dB, achieving the fastest response among Te-based photodiode devices and a dark current density 7 orders of magnitude smaller than Te-based photoconductive and field-effect transistor devices. With a simple Si<sub>3</sub> N<sub>4</sub> packaging, the detector shows high electric stability and thermal stability, meeting the requirements for vehicular applications. Based on the optimized Te<sub>x</sub> Se<sub>1-</sub> <sub>x</sub> photodiode detector, the applications in material identification and masking imaging is demonstrated. This work paves a new way for CMOS-compatible infrared imaging chips.