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单轴拉伸应力体Ge和Ge/SiGe量子阱激光器阈值电流分析

Analysis of threshold current of uniaxially tensile stressed bulk Ge and Ge/SiGe quantum well lasers.

作者信息

Jiang Jialin, Sun Junqiang, Gao Jianfeng, Zhang Ruiwen

出版信息

Opt Express. 2017 Oct 30;25(22):26714-26727. doi: 10.1364/OE.25.026714.

Abstract

We propose and design uniaxially tensile stressed bulk Ge and Ge/SiGe quantum well lasers with the stress along <100> direction. The micro-bridge structure is adapted for introducing uniaxial stress in Ge/SiGe quantum well. To enhance the fabrication tolerance, full-etched circular gratings with high reflectivity bandwidths of ~500 nm are deployed in laser cavities. We compare and analyze the density of state, the number of states between Γ- and L-points, the carrier injection efficiency, and the threshold current density for the uniaxially tensile stressed bulk Ge and Ge/SiGe quantum well lasers. Simulation results show that the threshold current density of the Ge/SiGe quantum well laser is much higher than that of the bulk Ge laser, even combined with high uniaxial tensile stress owing to the larger number of states between Γ- and L- points and extremely low carrier injection efficiency. Electrical transport simulation reveals that the reduced effective mass of the hole and the small conduction band offset cause the low carrier injection efficiency of the Ge/SiGe quantum well laser. Our theoretical results imply that unlike III-V material, uniaxially tensile stressed bulk Ge outperforms a Ge/SiGe quantum well with the same strain level and is a promising approach for Si-compatible light sources.

摘要

我们提出并设计了沿<100>方向施加单轴拉伸应力的体Ge和Ge/SiGe量子阱激光器。微桥结构适用于在Ge/SiGe量子阱中引入单轴应力。为了提高制造容差,在激光腔中部署了具有约500 nm高反射率带宽的全蚀刻圆形光栅。我们对单轴拉伸应力的体Ge和Ge/SiGe量子阱激光器的态密度、Γ点和L点之间的态数、载流子注入效率以及阈值电流密度进行了比较和分析。模拟结果表明,由于Γ点和L点之间的态数较多以及载流子注入效率极低,即使结合高单轴拉伸应力,Ge/SiGe量子阱激光器的阈值电流密度仍远高于体Ge激光器。电输运模拟表明,空穴有效质量的降低和小的导带偏移导致了Ge/SiGe量子阱激光器的低载流子注入效率。我们的理论结果表明,与III-V族材料不同,在相同应变水平下,单轴拉伸应力的体Ge优于Ge/SiGe量子阱,是一种很有前景的硅兼容光源方法。

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