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首页> 外文期刊>Optics Communications: A Journal Devoted to the Rapid Publication of Short Contributions in the Field of Optics and Interaction of Light with Matter >Modeling of mid-infrared quantum cascade lasers: The role of temperature and operating field strength on the laser performance
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Modeling of mid-infrared quantum cascade lasers: The role of temperature and operating field strength on the laser performance

机译:中红外量子级联激光器的建模:温度和工作场强度对激光性能的作用

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In this paper a self-consistent numerical approach to study the temperature and bias dependent characteristics of mid-infrared (mid-IR) quantum cascade lasers (QCLs) is presented which integrates a number of quantum mechanical models. The field-dependent laser parameters including the non-radiative scattering times, the detuning and energy levels, the escape activation energy, the backfilling excitation energy and dipole moment of the optical transition are calculated for a wide range of applied electric fields by a self-consistent solution of Schrodinger Poisson equations. A detailed analysis of performance of the obtained structure is carried out within a self-consistent solution of the subband population rate equations coupled with carrier coherent transport equations through the sequential resonant tunneling, by taking into account the temperature and bias dependency of the relevant parameters. Furthermore, the heat transfer equation is included in order to calculate the carrier temperature inside the active region levels. This leads to a compact predictive model to analyze the temperature and electric field dependent characteristics of the mid-IR QCLs such as the light-current (L-I), electric field current (F-I) and core temperature-electric field (T-F) curves. For a typical mid-IR QCL, a good agreement was found between the simulated temperature-dependent L-I characteristic and experimental data, which confirms validity of the model. It is found that the main characteristics of the device such as output power and turn-on delay time are degraded by interplay between the temperature and Stark effects. (C) 2016 Elsevier B.V. All rights reserved.
机译:在本文中,提出了一种研究中红外线(中外IR)量子级联激光器(QCLS)的温度和偏置依赖性特性的自我一致的数值方法,其集成了许多量子机械模型。包括非辐射散射时间,失谐和能级,逃逸激活能量,回填充激发能量和偶极电影的抗衰退和能量的激光参数被自行的宽范围的应用电场计算光学转变的突变激活能量,回填充激发能量和偶极矩。 Schrodinger Poisson方程的一致解。通过考虑相关参数的温度和偏置依赖性,在与载波相干传输方程耦合的子带人口率方程的自一致性解决方案的自一致性解决方案中进行了对所得结构的详细分析。此外,包括传热方程以便计算有源区水平内的载波温度。这导致紧凑的预测模型,分析了中间IR QCL的温度和电场依赖性特性,例如光电流(L-1),电场电流(F-I)和核心温度电场(T-F)曲线。对于典型的中红外QCL,在模拟温度相关的L-I特征和实验数据之间发现了一个良好的一致性,这证实了模型的有效性。结果发现,诸如输出电源和导通延迟时间的装置的主要特性通过温度和迹象效应之间的相互作用而劣化。 (c)2016 Elsevier B.v.保留所有权利。

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