All-Silicon Broadband Infrared Photodetectors With In-Plane Photon Trapping Structures.

Deng, Ke; Guo, Jiaxiang; Zhang, Kun; Xiao, Yunlong; Li, Qing; Zhang, Tao; Guo, Dezheng; He, Ting et al. · Adv Mater · 2025

basic_science · Level V

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Abstract

Silicon (Si) photonics has been widely explored for many various applications, including optical communication, optoelectronic computing, spectroscopy, and image sensing. As a key component for optoelectronic signal conversion in these applications, Si-based infrared photodetectors have attracted extensive attention. However, achieving all-Si on-chip photodetection in the very long-wavelength infrared (VLWIR) range remains challenging, with broadband enhancement and improved operating temperature being pressing issues that need to be addressed. An all-Si photodetector design is presented using in-plane photon trapping structures (IPTS) to enhance detection efficiency and improve the operating temperature of the photodetector at the VLWIR range. The photodetector achieves a broadband enhancement of 285-575% (across 12-19 µm) and a 31% reduction in dark current. Additionally, it exhibits an impressive peak specific detectivity of 1.9 × 10<sup>10</sup> cm Hz<sup>1/2</sup> W<sup>-1</sup> at 15 µm, operating at a temperature of 40 K. This study introduces a novel all-Si optoelectronic device architecture that offers a promising solution for improving the operating temperature and sensitivity of broadband VLWIR devices, making the whole system more compact and cost-effective.