纳米腔增强了工作在30k以下的固态量子发射器的光子相干性

A. Brash, Jake Iles-Smith
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引用次数: 0

摘要

固态发射体,如外延量子点,已经成为高效的、按需的不可区分光子源的领先平台,这是许多光学量子技术的关键资源。为了最大限度地提高性能,这些源通常在液氦温度(~4 K)下工作,这就引入了巨大的尺寸、重量和功率要求,这对于拟议的应用来说是不切实际的。在这里,我们通过实验解决了两种不同的温度依赖声子相互作用,这些相互作用降低了不可区分性,使我们能够证明光子纳米腔的耦合可以极大地提高与紧凑型制冷机兼容的高温下的光子相干性。我们推导了一个极化子模型,该模型完全捕获了我们实验中观察到的声子的温度依赖影响,通过优化腔参数,为进一步提高未来设备的不可区分性和工作温度提供了预测能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanocavity enhanced photon coherence of solid-state quantum emitters operating up to 30 K
Solid-state emitters such as epitaxial quantum dots have emerged as a leading platform for efficient, on-demand sources of indistinguishable photons, a key resource for many optical quantum technologies. To maximise performance, these sources normally operate at liquid helium temperatures (~4 K), introducing significant size, weight and power requirements that can be impractical for proposed applications. Here we experimentally resolve the two distinct temperature-dependent phonon interactions that degrade indistinguishability, allowing us to demonstrate that coupling to a photonic nanocavity can greatly improve photon coherence at elevated temperatures compatible with compact cryocoolers. We derive a polaron model that fully captures the temperature-dependent influence of phonons observed in our experiments, providing predictive power to further increase the indistinguishability and operating temperature of future devices through optimised cavity parameters.
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