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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Pulsed excitation dynamics in quantum-dot-cavity systems: Limits to optimizing the fidelity of on-demand single-photon sources
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Pulsed excitation dynamics in quantum-dot-cavity systems: Limits to optimizing the fidelity of on-demand single-photon sources

机译:量子点腔系统中的脉冲激发动力学:优化按需单光子源保真度的限制

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A quantum dot coupled to an optical cavity has recently proven to be an excellent source of on-demand single photons. Typically, applications require simultaneous high efficiency of the source and quantum indistinguishability of the extracted photons. While much progress has been made in both suppressing background sources of decoherence and utilizing cavity quantum electrodynamics to overcome fundamental limitations set by the intrinsic exciton-phonon scattering inherent in the solid-state platform, the role of the excitation pulse has been often neglected. We investigate quantitatively the factors associated with pulsed excitation that can limit simultaneous efficiency and indistinguishability, including excitation of multiple excitons, multiphotons, and pump-induced dephasing, and find for realistic single-photon sources that these effects cause degradation of the source figures of merit comparable to that of phonon scattering. We also develop rigorous open quantum system polaron master equation models of quantum dot dynamics under a time-dependent drive which incorporate non-Markovian effects of both photon and phonon reservoirs, and explicitly show how coupling to a high-(J-factor cavity suppresses multiphoton emission in a way not predicted by commonly employed models. We then use our findings to summarize the criteria that can be used for single-photon-source optimization.
机译:耦合到光腔的量子点最近被证明是按需单光子的绝佳来源。通常,应用需要同时具有高效率的源和提取的光子的量子不可分辨性。尽管在抑制退相干的背景源以及利用腔量子电动力学克服固态平台固有的固有激子-声子散射所设定的基本限制方面都已取得了很大进展,但激励脉冲的作用却常常被忽略。我们定量研究与脉冲激发相关的因素,这些因素可能会限制同时效率和可分辨性,包括多个激子,多光子的激发以及泵浦引起的相移,并为现实的单光子源寻找这些影响会导致源品质因数下降的因素。相当于声子散射。我们还开发了严格的开放量子系统极化子主方程模型,该模型在时间依赖的驱动下结合了光子和声子储层的非马尔可夫效应,并明确显示了与高(J因子腔)的耦合如何抑制多光子。以通常模型无法预测的方式发射光,然后我们使用我们的发现来总结可用于单光子源优化的标准。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2018年第4期|045309.1-045309.12|共12页
  • 作者

    Chris Gustin; Stephen Hughes;

  • 作者单位

    Department of Physics, Engineering Physics, and Astronomy, Queen's University, Kingston, Ontario K7L 3N6, Canada;

    Department of Physics, Engineering Physics, and Astronomy, Queen's University, Kingston, Ontario K7L 3N6, Canada;

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