论文标题

通过单步rydberg封锁门处理的所有光学量子信息处理

All optical quantum information processing via a single step Rydberg blockade gate

论文作者

Khazali, Mohammadsadegh

论文摘要

实现量子互联网的关键要素之一是确定性的两光门门。此$ CZ $光子门还完成了一套通用门,用于全光量子信息处理。本文讨论了一种方法,通过使用非rydberg电磁诱导的透明度(EIT)在原子合奏中存储控制和目标光子,以实现高保真度$ CZ $光子门,然后使用全球激光器进行快速,单步rydberg激发。提出的方案是通过对Rydberg激发中使用的两个激光器的相对强度调制来运行的。拟议的操作规避常规$π$ -gap- $π$方案,从环境噪声中采用了对Rydberg原子的连续激光保护。封锁半径内存储的光子的完整空间重叠优化了光学深度并简化了实验。此处的相干操作是在先前的Rydberg EIT方案中耗散的区域进行的。遇到主要缺陷来源,即Rydberg和中级水平的自发排放,人口旋转误差,多普勒的过渡线扩展,存储/检索效率和原子热运动诱发的退化,这篇文章结束了现实的实验参数99.7 \%\%\%fidelity fivelity inevelievelies。

One of the critical elements in the realization of the quantum internet are deterministic two-photon gates. This $CZ$ photonic gate also completes a set of universal gates for all-optical quantum information processing. This article discusses an approach to realize high fidelity $CZ$ photonic gate by storing both control and target photons within an atomic ensemble using non-Rydberg electromagnetically induced transparency (EIT) followed by a fast, single-step Rydberg excitation with global lasers. The proposed scheme operates by relative intensity modulation of two lasers used in Rydberg excitation. Circumventing the conventional $π$-gap-$π$ schemes, the proposed operation features continuous laser protection of the Rydberg atoms from the environment noise. The complete spatial overlap of stored photons inside the blockade radius optimizes the optical depth and simplifies the experiment. The coherent operation here is performed in the region that was dissipative in the previous Rydberg EIT schemes. Encountering the main imperfection sources, i.e. the spontaneous emission of the Rydberg and intermediate levels, population rotation errors, Doppler broadening of the transition lines, storage/retrieval efficiency, and atomic thermal motion induced decoherence, this article concludes that with realistic experimental parameters 99.7\% fidelity is achievable.

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