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arXiv · 2607.16497

Study of GeSn Selective Area Growth with Demonstration of SWIR Light Detection

Abstract

As germanium-tin (GeSn) epitaxial growth quality continuously improves, the search for an efficient integration strategy of GeSn optoelectronics devices into complementary metal-oxide-semiconductor (CMOS) manufacturing line also accelerates. Selective area growth (SAG) on patterned substrate emerges as a promising approach for this quest, with locally controlled growth of GeSn laser/detector suitable for either co-integration with silicon-based waveguide structure or stand-alone module like focal plane array. In this work, we report successful GeSn SAG with Sn content ranging from 3.2% to 8.7% of good optical quality, with demonstration of tunable GeSn SAG photoluminescence and GeSn SAG photoconductor device, the latter with detection cutoff wavelength up to 2 um. In addition, we present a comprehensive study of GeSn SAG condition at different window sizes, from 2 um to 100 um, and shapes: circle, square, octagon, and rectangle. Presence of loading effect is revealed, where GeSn growth rate increases as pattern fill factor and window size shrink. It introduces a different growth condition compared to thin film growth, which can weaken or inhibit Sn incorporation at very small window size and induce Sn segregation in high Sn content SAG growth.

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Hryhorii Stanchu, Quang Minh Thai, Rajesh Kumar, Fernando M. de Oliveira, Kushal Dahal, Xuehuan Ma, Sudip Acharya, Justin Rudie, Alexander Golden, Joshua M Grant, Matthew Cook, Stephen Margiotta, Xiaoxin Wang, Jifeng Liu, Perry C. Grant, Baohua Li, Wei Du, Gregory Salamo, Shui-Qing Yu. 2026-07-17. Study of GeSn Selective Area Growth with Demonstration of SWIR Light Detection. https://arxiv.org/abs/2607.16497

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