Mechanically induced optical loss mechanism due to thermal expansion coefficient mismatch in micro-cavities with all-around stressor layers

Author:

Al-Attili Abdelrahman Z.12ORCID,Burt Daniel1,Rahman Tasmiat1ORCID,Li Zuo1,Higashitarumizu Naoki3ORCID,Gardes Frederic Y.1ORCID,Ishikawa Yasuhiko4ORCID,Saito Shinichi1ORCID

Affiliation:

1. Sustainable Electronic Technologies, Department of Electronics and Computer Science, University of Southampton 1 , Southampton SO17 1BJ, United Kingdom

2. Department of Energy Engineering, School of Engineering Technology, Al Hussein Technical University 2 , Amman 11831, Jordan

3. Department of Materials Engineering, University of Tokyo 3 , 7-3-1 Hongo, Bunkyo-Ku, Tokyo 113-8656, Japan

4. Department of Electrical and Electronic Information Engineering, Toyohashi University of Technology 4 , 1-1 Hibarigaoka, Tempaku, Toyohashi 441-8580, Japan

Abstract

Various excitation-induced loss mechanisms have been identified during the development of direct-gap semiconductor lasers. Recently, indirect-gap laser sources, particularly germanium (Ge) or GeSn based, have emerged due to silicon industry compatibility. Tensile strain is crucial for optical gain or low-threshold room-temperature operation in such media. This study investigates an excitation-induced optical loss mechanism of mechanical origin in Ge-based micro-cavities with all-around stressor layers, a popular platform for strain-engineered laser sources. Using Raman spectroscopy, photoluminescence, and simulations, we find that excitation lowers the optical gain by altering the strain profile. Heating causes Ge micro-cavities to expand within a constraining stressor layer, inducing compressive strain, which is explained by the mismatch in thermal expansion coefficients.

Publisher

AIP Publishing

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