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Updated: Jan 9, 2026

Infrared Degenerate Four-wave Mixing with Upconversion Detection for Quantitative Gas Sensing
Published on: March 22, 2019
High-entropy layered double hydroxides enabled wide-bandwidth near-infrared photodetection with viable environmental
Kent-Tien Liang1, Li-Mei Cheng1, Kai-Lin Hsiao2
1Program on Semiconductor Packaging and Testing, National Cheng Kung University, Tainan 70101, Taiwan. timcychen@mail.ncku.edu.tw.
Abstract:
Emerging high environmental resistance of near-infrared (NIR) photodetectors requires the merits of mechanical and thermal robustness with a wide operation bandwidth. Here, FeCoNiCuZnAl-based high-entropy layered double hydroxides (LDHs), directly deposited on a Si nanowire/Si substrate via a solution synthesis process, are presented, which illustrates an outperforming NIR detectivity of 2.73 × 1011 Jones, and a rise/fall response time of 11/34 µs under 940-nm light illumination, with an adaptive frequency bandwidth of up to 3 × 104 Hz and a suppressed flicker noise of 3.1 × 10-13 A Hz-1/2. The remarkable mechanical, chemical and thermal resistances of such designs were further validated, originating from the effects of entropy-driven stabilization that mitigated site-specific perturbations and maintained the structural integrity of LDH frameworks. The results merited the top-performing designs, which dictated the technological implementation of NIR photodetectors.

