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Extended-SWIR High-Speed All-GeSn PIN Photodetectors on Silicon

Applied Physics 2024-01-08 v1 Optics

Abstract

There is an increasing need for silicon-compatible high bandwidth extended-short wave infrared (e-SWIR) photodetectors (PDs) to implement cost-effective and scalable optoelectronic devices. These systems are quintessential to address several technological bottlenecks in detection and ranging, surveillance, ultrafast spectroscopy, and imaging. In fact, current e-SWIR high bandwidth PDs are predominantly made of III-V compound semiconductors and thus are costly and suffer a limited integration on silicon besides a low responsivity at wavelengths exceeding 2.3μ2.3 \,\mum. To circumvent these challenges, Ge1x_{1-x}Snx_{x} semiconductors have been proposed as building blocks for silicon-integrated high-speed e-SWIR devices. Herein, this study demonstrates a vertical all-GeSn PIN PDs consisting of p-Ge0.92_{0.92}Sn0.08_{0.08}/i-Ge0.91_{0.91}Sn0.09_{0.09}/n-Ge0.89_{0.89}Sn0.11_{0.11} and p-Ge0.91_{0.91}Sn0.09_{0.09}/i-Ge0.88_{0.88}Sn0.12_{0.12}/n-Ge0.87_{0.87}Sn0.13_{0.13} heterostructures grown on silicon following a step-graded temperature-controlled epitaxy protocol. The performance of these PDs was investigated as a function of the device diameter in the 1030μ10-30 \,\mum range. The developed PD devices yield a high bandwidth of 12.4 GHz at a bias of 5V for a device diameter of 10μ10 \,\mum. Moreover, these devices show a high responsivity of 0.24 A/W, a low noise, and a 2.8μ2.8 \,\mum cutoff wavelength thus covering the whole e-SWIR range.

Keywords

Cite

@article{arxiv.2401.02629,
  title  = {Extended-SWIR High-Speed All-GeSn PIN Photodetectors on Silicon},
  author = {Mahmoud R. M. Atalla and Cedric Lemieux-Leduc and Simone Assali and Sebastian Koelling and Patrick Daoust and Oussama Moutanabbir},
  journal= {arXiv preprint arXiv:2401.02629},
  year   = {2024}
}