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Optical and Transport Characteristics of Quantum-Cascade Lasers With Optimized Second-Harmonic Generation

机译:具有优化二次谐波生成的量子级联激光器的光学和传输特性

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We present simulations of midinfrared quantum-cascade lasers (QCLs) with optimized second-harmonic generation (SHG). The optimized design was obtained utilizing techniques from supersymmetric quantum mechanics with both material-dependent effective mass and band nonparabolicity. Carrier transport and power output of the structure are analyzed by self-consistently solving rate equations for the carriers and photons. Nonunity pumping efficiency from one period of the QCL to the next is taken into account by including all relevant electron-electron and electron-longitudinal (LO) phonon scattering mechanisms between the injector/collector and active regions. Two-photon absorption processes are analyzed for the resonant cascading triple levels designed for enhancing SHG. Both sequential and simultaneous two-photon absorptions are included in the rate-equation model. The current-output characteristics for both structures are analyzed and compared. Stronger resonant tunneling in the optimized structure is manifested by enhanced negative differential resistance. Current-dependent linear optical output power is derived based on the steady-state photon populations in the active region. The second-harmonic-power is derived from the Maxwell equations with the phase mismatch included. Due to stronger coupling between lasing levels, the optimized structure has both higher linear and nonlinear output powers. Phase mismatch effect is significant for both structures leading to a substantial reduction of the linear-to-nonlinear conversion efficiency. The optimized structure can be fabricated through digitally grading the submonolayer alloys by molecular beam epitaxy technique
机译:我们目前模拟具有优化的二次谐波产生(SHG)的中红外量子级联激光器(QCL)。优化设计是利用超对称量子力学的技术获得的,该技术具有与材料有关的有效质量和能带非抛物线性。通过自洽求解载流子和光子的速率方程,分析结构的载流子传输和功率输出。通过在注入器/收集器和有源区之间包含所有相关的电子-电子和电子-纵向(LO)声子散射机制,可以考虑从QCL的一个周期到下一个周期的不均匀泵浦效率。分析了用于增强SHG的共振级联三能级的两光子吸收过程。速率方程模型包括连续和同时的两个光子吸收。分析和比较了两种结构的电流输出特性。在优化的结构中,更强的谐振隧穿表现为增强的负微分电阻。基于电流的线性光输出功率是基于有源区域中的稳态光子数量得出的。从包括相位失配的麦克斯韦方程中导出二次谐波功率。由于激光水平之间的较强耦合,优化的结构同时具有较高的线性和非线性输出功率。相位失配效应对于两种结构都非常重要,从而导致线性到非线性转换效率的大幅降低。可以通过分子束外延技术对亚单层合金进行数字分级来制造优化的结构。

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