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Interplay of structural design and interaction processes in tunnel-injection semiconductor lasers

机译:隧道注入半导体激光器中结构设计和相互作用过程的相互作用

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Tunnel-injection lasers promise various advantages in comparison to conventional laser designs. In this paper, the physics of the tunnel-injection process is studied within a microscopic theory in order to clarify design requirements for laser structures based on quantum dots as active material and an injector quantum well providing excited charge carriers. We analyze how the electronic states of the injector quantum-well and quantum-dot levels should be aligned and in which way their coupling through the tunnel-injection barrier should be adjusted for optimal carrier injection rates into the quantum-dot ground state used for the laser transition. Our description of the tunnel-injection process combines two main ingredients: the tunnel coupling of the wave functions as well as the phonon- and Coulomb-assisted transition rates. For this purpose, material-realistic electronic state calculations for the coupled system of injector quantum well, tunnel barrier, and quantum dots are combined with a many-body theory for the carrier scattering processes. We find that the often assumed longitudinal-optical-phonon resonance condition for the level alignment has practically no influence on the injection rate of carriers into the quantum-dot states. The structural design should provide optimal hybridization of the injector quantum-well states with excited quantum-dot states.
机译:与传统的激光器设计相比,隧道注入激光器具有各种优势。为了阐明基于量子点作为活性材料和提供激发电荷载流子的注入器量子阱的激光结构的设计要求,本文在微观理论中研究了隧道注入过程的物理原理。我们分析了应该如何调整注入器量子阱和量子点能级的电子状态,以及应如何调整它们通过隧道注入势垒的耦合,以使载流子注入量子点基态的最佳载流子速率达到最佳。激光过渡。我们对隧道注入过程的描述包含两个主要成分:波函数的隧道耦合以及声子和库仑辅助的跃迁速率。为此,将用于注入器量子阱,隧道势垒和量子点的耦合系统的逼真的电子状态计算与载流子散射过程的多体理论相结合。我们发现,通常假定的用于水平对准的纵向光学声子共振条件实际上对载流子注入量子点状态没有影响。结构设计应提供注入器量子阱态与激发量子点态的最佳杂交。

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