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级联发射器中纠缠与预示的机理理解。

Mechanistic understanding of entanglement and heralding in cascade emitters.

作者信息

N Avanaki Kobra, Schatz George C

机构信息

Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208-3113, USA.

出版信息

J Chem Phys. 2021 Jan 14;154(2):024304. doi: 10.1063/5.0032648.

Abstract

Semiconductor quantum light sources are favorable for a wide range of quantum photonic tasks, particularly quantum computing and quantum information processing. Here, we theoretically investigate the properties of quantum emitters as a source of entangled photons with practical quantum properties including heralding of on-demand single photons. Through the theoretical analysis, we characterize the properties of a cascade (biexciton) emitter, including (1) studies of single-photon purity, (2) investigating the first- and second-order correlation functions, and (3) determining the Schmidt number of the entangled photons. The analytical expression derived for the Schmidt number of the cascade emitters reveals a strong dependence on the ratio of decay rates of the first and second photons. Looking into the joint spectral density of the generated biphotons, we show how the purity and degree of entanglement are connected to the production of heralded single photons. Our model is further developed to include polarization effects, fine structure splitting, and the emission delay between the exciton and biexciton emission. The extended model offers more details about the underlying mechanism of entangled photon production, and it provides additional degrees of freedom for manipulating the system and characterizing purity of the output photon. The theoretical investigations and the analysis provide a cornerstone for the experimental design and engineering of on-demand single photons.

摘要

半导体量子光源适用于广泛的量子光子任务,特别是量子计算和量子信息处理。在此,我们从理论上研究了作为具有实际量子特性(包括按需单光子的预示)的纠缠光子源的量子发射器的特性。通过理论分析,我们表征了级联(双激子)发射器的特性,包括:(1)单光子纯度研究;(2)研究一阶和二阶关联函数;(3)确定纠缠光子的施密特数。为级联发射器的施密特数推导的解析表达式揭示了其对第一和第二个光子衰减率之比的强烈依赖性。通过研究生成的双光子的联合光谱密度,我们展示了纯度和纠缠度如何与预示单光子的产生相关联。我们进一步开发模型以纳入偏振效应、精细结构分裂以及激子和双激子发射之间的发射延迟。扩展模型提供了关于纠缠光子产生的潜在机制的更多细节,并为操纵系统和表征输出光子的纯度提供了额外的自由度。理论研究和分析为按需单光子的实验设计和工程奠定了基础。

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