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MATLAB-based program for optimization of quantum cascade laser active region parameters and calculation of output characteristics in magnetic field

机译:基于MATLAB的量子级联激光有源区参数优化和磁场输出特性计算程序

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摘要

A strong magnetic field applied along the growth direction of a quantum cascade laser (QCL) active region gives rise to a spectrum of discrete energy states, the Landau levels. By combining quantum engineering of a QCL with a static magnetic field, we can selectively inhibit/enhance non-radiative electron relaxation process between the relevant Landau levels of a triple quantum well and realize a tunable surface emitting device. An efficient numerical algorithm implementation is presented of optimization of GaAs/AlGaAs QCL region parameters and calculation of output properties in the magnetic field. Both theoretical analysis and MATLAB implementation are given for LO-phonon and interface roughness scattering mechanisms on the operation of QCL. At elevated temperatures, electrons in the relevant laser states absorb/emit more LOphonons which results in reduction of the optical gain. The decrease in the optical gain is moderated by the occurrence of interface roughness scattering, which remains unchanged with increasing temperature. Using the calculated scattering rates as input data, rate equations can be solved and population inversion and the optical gain obtained. Incorporation of the interface roughness scattering mechanism into the model did not create new resonant peaks of the optical gain. However, it resulted in shifting the existing peaks positions and overall reduction of the optical gain.
机译:沿量子级联激光器(QCL)有源区的生长方向施加的强磁场会产生离散的能量态(朗道能级)的光谱。通过将QCL的量子工程与静态磁场相结合,我们可以选择性地抑制/增强三重量子阱的相关Landau能级之间的非辐射电子弛豫过程,并实现可调谐的表面发射器件。提出了一种有效的数值算法实现,用于优化GaAs / AlGaAs QCL区域参数并计算磁场中的输出特性。给出了QCL的LO声子和界面粗糙度散射机理的理论分析和MATLAB实现。在升高的温度下,处于相关激光状态的电子会吸收/发射更多的LOphonon,从而导致光学增益降低。光学增益的降低通过界面粗糙度散射的出现而得到缓和,界面粗糙度散射随温度升高而保持不变。使用计算出的散射速率作为输入数据,可以求解速率方程式,并获得种群反转和光学增益。将界面粗糙度散射机制纳入模型中并不会产生新的光学增益共振峰。然而,这导致现有峰位置的偏移和光学增益的整体降低。

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