Quantum Borrmann effect for dissipation-immune photon-photon correlations

A. Poshakinskiy, A. Poddubny
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引用次数: 4

Abstract

We study theoretically the second-order correlation function $g^{(2)}(t)$ for photons transmitted through a periodic Bragg-spaced array of superconducting qubits, coupled to a waveguide. We demonstrate that photon bunching and anti-bunching persist much longer than both radiative and non-radiative lifetimes of a single qubit. The photon-photon correlations become immune to non-radiative dissipation due to the Borrmann effect, that is a strongly non-Markovian collective feature of light-qubit coupling inherent to the Bragg regime. This persistence of quantum correlations opens new avenues for enhancing the performance of setups of waveguide quantum electrodynamics.
耗散免疫光子-光子相关的量子Borrmann效应
我们从理论上研究了光子通过与波导耦合的周期性布拉格间隔超导量子比特阵列传输的二阶相关函数$g^{(2)}(t)$。我们证明光子聚束和反聚束的持续时间比单个量子比特的辐射和非辐射寿命都要长得多。由于Borrmann效应,光子-光子相关变得不受非辐射耗散的影响,这是Bragg体制固有的光-量子位耦合的强烈非马尔可夫集体特征。这种量子相关性的持久性为提高波导量子电动力学装置的性能开辟了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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