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Quantum dots with indirect band gap: power-law photoluminescence decay

机译:具有间接带隙的量子点:幂律光致发光衰减

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摘要

In this work the experimental effect of a slow decay of the photoluminescence is studied theoretically in the case of quantum dots with an indirect energy band gap. The slow decay of the photoluminescence is considered as decay in time of the luminescence intensity, following the excitation of the quantum dot sample electronic system by a short optical pulse. In the presented theoretical treatment the process is studied as a single dot property. The inter-valley deformation potential interaction of the excited conduction band electrons with lattice vibrations is considered in the self-consistent Bom approximation to the electronic self-energy. The theory is built on the non-equilibrium electronic quantum transport theory. The time dependence of the photoluminescence decay is estimated upon using a simple effective mass model. The numerical calculation of the considered model shows the power-law time characteristics of the photoluminescence decay in the long-time limit of the decay. We demonstrate that the non-adiabatic influence of the interaction of the conduction band electrons with the lattice vibrations provides a mechanism giving us the power-law time dependence of the photoluminescence intensity signal. This theoretical result emphasizes the role of the electron-phonon interaction in the nanostructures.
机译:在这项工作中,理论上在具有间接能带隙的量子点的情况下研究了光致发光缓慢衰减的实验效果。光致发光的缓慢衰减被认为是随着短光脉冲激发量子点样品电子系统之后发光强度随时间的衰减。在提出的理论处理中,将该过程作为单点性质进行研究。在电子自能的自洽Bom近似中考虑了激发的导带电子与晶格振动的谷间形变电势相互作用。该理论建立在非平衡电子量子传输理论的基础上。使用简单的有效质量模型估算光致发光衰减的时间依赖性。所考虑模型的数值计算显示了光致衰变的幂律时间特性在衰变的长期极限中。我们证明了导带电子与晶格振动的相互作用的非绝热影响提供了一种机制,使我们能够获得光致发光强度信号的幂律时间依赖性。该理论结果强调了电子-声子相互作用在纳米结构中的作用。

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