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首页> 外文期刊>Physica Scripta: An International Journal for Experimental and Theoretical Physics >Geometry effect on energy transfer rate in a coupled-quantum-well structure: nonlinear regime
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Geometry effect on energy transfer rate in a coupled-quantum-well structure: nonlinear regime

机译:几何对耦合量子阱结构中能量传输速率的影响:非线性机制

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We study theoretically the effect of geometry on the energy transfer rate at nonlinear regime in a coupled-quantum-well system using the balance equation approach. To investigate comparatively the effect of both symmetric and asymmetric geometry, different structures are considered. The random phase approximation dynamic dielectric function is employed to include the contributions from both quasiparticle and plasmon excitations. Also, the short-range exchange interaction is taken into account through the Hubbard approximation. Our numerical results show that the energy transfer rate increases by increasing the well thicknesses in symmetric structures. Furthermore, by increasing spatial asymmetry, the energy transfer rate decreases for the electron temperature range of interest. From numerical calculations, it is obtained that the nonlinear energy transfer rate is proportional to the square of electron drift velocity in all structures and also, found that the influence of Hubbard local field correction on the energy transfer rate gets weaker by increasing the strength of applied electric field.
机译:我们使用平衡方程法,从理论上研究了几何对耦合量子阱系统中非线性状态下能量传输速率的影响。为了比较研究对称和非对称几何的影响,考虑了不同的结构。采用随机相位近似动态介电函数来包括准粒子和等离子体激元激发的贡献。另外,通过Hubbard近似考虑了短程交换交互。我们的数值结果表明,通过增加对称结构中的阱厚度,能量传输速率会增加。此外,通过增加空间不对称性,对于感兴趣的电子温度范围,能量传递速率降低。从数值计算中可以看出,非线性能量传递速率与所有结构中电子漂移速度的平方成正比,并且发现通过增加施加强度,哈伯德局部场校正对能量传递速率的影响变弱。电场。

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