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Markovian and Non-Markovian Light-Emission Channels in Strained Quantum Wires

机译:应变量子线中的马尔可夫和非马尔可夫发光通道

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We have achieved conditions to obtain optical memory effects in semiconductor nanostructures. The system is based on strained InP quantum wires where the tuning of the heavy-light valence band splitting has allowed the existence of two independent optical channels with correlated and uncorrelated excitation and light-emission processes. The presence of an optical channel that preserves the excitation memory is unambiguously corroborated by photoluminescence measurements of free-standing quantum wires under different configurations of the incoming and outgoing light polarizations in various samples. High-resolution transmission electron microscopy and electron diffraction indicate the presence of strain effects in the optical response. By using this effect and under certain growth conditions, we have shown that the optical recombination is mediated by relaxation processes with different natures: one a Markov and another with a non-Markovian signature. Resonance intersubband light-heavy hole transitions assisted by optical phonons provide the desired mechanism for the correlated non-Markovian carrier relaxation process. A multiband calculation for strained InP quantum wires was developed to account for the description of the character of the valence band states and gives quantitative support for light hole-heavy hole transitions assisted by optical phonons.
机译:我们已经获得了在半导体纳米结构中获得光学存储效应的条件。该系统基于应变InP量子线,其中重光价带分裂的调谐已允许存在两个具有相关和不相关的激发和发光过程的独立光学通道。在各种样本中,在入射和输出光偏振的不同配置下,独立式量子线的光致发光测量结果清楚地证实了保留激发记忆的光通道的存在。高分辨率透射电子显微镜和电子衍射表明在光学响应中存在应变效应。通过使用这种效应并在某些生长条件下,我们已经表明,光学重组是由具有不同性质的弛豫过程介导的:一个是马尔可夫,另一个是非马尔可夫签名。由光子辅助的共振子带间光重空穴跃迁为相关的非马尔可夫载流子弛豫过程提供了所需的机制。开发了用于应变InP量子线的多带计算,以解释价带态的特征,并为由光子辅助的轻空穴-重空穴跃迁提供了定量支持。

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