材料科学
基质(水族馆)
外延
硅
光致发光
拉曼光谱
光电子学
热膨胀
应力松弛
拉伤
蚀刻(微加工)
纳米技术
光学
复合材料
图层(电子)
医学
海洋学
物理
蠕动
地质学
内科学
作者
Jonathan Henriques,Bouraoui Ilahi,Alexandre Heintz,Denis Morris,Richard Arès,Abderraouf Boucherif
标识
DOI:10.1016/j.jcrysgro.2023.127433
摘要
The integration of high quality III-V materials-based devices on the Si platform is considered as an enabling path towards achieving the long-standing goal of creating low-cost/high-performance devices. However, the heteroepitaxy of III-V compounds on a Si substrate generates high stress due to the difference in thermal expansion coefficient leading notably to crack generation. Here, we report on the reduction of the thermal strain of GaAs and Ge deposited on a Si substrate. The method is based on the formation of buried high density nanovoids by electrochemical etching of Ge/Si virtual substrate followed by direct epitaxial growth of Ge and GaAs. The thermal strain has been investigated for GaAs epilayer by High-Resolution X-Ray Diffraction and Raman spectroscopy showing a 30% decrease in strain. The strain reduction relies on the nanovoids-mediated thermal strain accommodation. Furthermore, photoluminescence measurements showed a 10-fold increase of the intensity, resulting in an improved optical and crystalline quality, making this virtual substrate promising for III-V based devices on Silicon.
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