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首页> 外文期刊>IEEE journal of selected topics in quantum electronics >A Finite-Difference Time-Domain Model for Quantum-Dot Lasers and Amplifiers in the Maxwell–Schr?dinger Framework
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A Finite-Difference Time-Domain Model for Quantum-Dot Lasers and Amplifiers in the Maxwell–Schr?dinger Framework

机译:Maxwell-Schr?dinger框架中的量子点激光器和放大器的时域有限差分模型

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We describe a finite-difference time-domain (FDTD) model of a long (edge-emitting) gain medium based on a quantum-dot (QD) in-a-well structure under the framework of the Maxwell–Schr?dinger equations. The model includes the dynamic behavior of a QD gain medium including an excited state incorporated within carrier rate equations and considers the carrier density dependence of the refractive index. The model enables us also to calculate carrier diffusion effects, which, unlike in quantum well based structures, play an important role in QD devices, since carrier capture and escape processes modify the effective carrier diffusion length. We present results of basic static and dynamic lasers properties as well as of the interaction of a QD amplifier with short, 150?fs pulses. We identify four regimes of operation for the pulse-QD interaction, two of which are important: the linear-saturated regime and the Rabi-oscillation dominated regime. The latter leads to Rabi floppings with a period shorter than the pulse itself. The model can be easily employed for any complicated process such as four-wave mixing, saturable absorption, semiconductor pulse laser sources, etc.
机译:我们在Maxwell–Schr?dinger方程的框架下,基于量子点(QD)阱结构,描述了长(边缘发射)增益介质的有限差分时域(FDTD)模型。该模型包括QD增益介质的动态行为,该介质包括包含在载流子速率方程中的激发态,并考虑了折射率对载流子密度的依赖性。该模型还使我们能够计算载流子扩散效应,这与基于量子阱的结构不同,它在QD器件中起着重要作用,因为载流子捕获和逸出过程会改变有效载流子扩散长度。我们介绍了基本静态和动态激光器特性以及QD放大器与短150?fs脉冲的相互作用的结果。我们确定了脉冲-QD相互作用的四种操作方式,其中两种很重要:线性饱和方式和Rabi振荡为主的方式。后者导致拉比触发器的周期短于脉冲本身。该模型可轻松用于任何复杂的过程,例如四波混合,饱和吸收,半导体脉冲激光源等。

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