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Optically pumped terahertz laser based on intersubband transitions in a GaN/AlGaN double quantum wellud

机译:基于GaN / alGaN双量子阱中的子带间跃迁的光泵浦太赫兹激光器

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摘要

A design for a GaN/AlGaN optically pumped terahertz laser emitting at 34 µm (ΔE~36 meV) is presented. This laser uses a simple three-level scheme where the depopulation of the lower laser level is achieved via resonant longitudinal-optical-phonon emission. The quasibound energies and associated wave functions are calculated with the intrinsic electric field induced by the piezoelectric and the spontaneous polarizations. The structures based on a double quantum well were simulated and the output characteristics extracted using a fully self-consistent rate equation model with all relevant scattering processes included. Both electron-longitudinal-optical phonon and electron-acoustic-phonon interactions were taken into account. The carrier distribution in subbands was assumed to be Fermi–Dirac-like, with electron temperature equal to the lattice temperature, but with different Fermi levels for each subband. A population inversion of 12% for a pumping flux Φ=10(27) cm(–2) s(–1) at room temperature was calculated for the optimized structure. By comparing the calculated modal gain and estimated waveguide and mirror losses the feasibility of laser action up to room temperature is predicted.
机译:提出了一种以34 µm(ΔE〜36 meV)发射的GaN / AlGaN光泵浦太赫兹激光器的设计。该激光器使用简单的三级方案,通过共振纵向光子声子发射实现较低激光器级的减少。利用压电和自发极化所感应的固有电场来计算准束缚能量和相关的波函数。模拟了基于双量子阱的结构,并使用包括所有相关散射过程的完全自洽率方程模型提取了输出特性。电子-纵向-光学声子和电子-声-声子相互作用都被考虑在内。假设子带中的载流子分布类似于费米-狄拉克,电子温度等于晶格温度,但每个子带的费米能级不同。对于优化结构,计算了室温下泵浦通量为Φ= 10(27)cm(–2)s(–1)时的种群反转12%。通过比较计算出的模态增益和估计的波导和反射镜损耗,可以预测到室温下激光作用的可行性。

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