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使用空间光调制器的单光子三量子比特量子逻辑

Single-photon three-qubit quantum logic using spatial light modulators.

作者信息

Kagalwala Kumel H, Di Giuseppe Giovanni, Abouraddy Ayman F, Saleh Bahaa E A

机构信息

CREOL, The College of Optics & Photonics, University of Central Florida, Orlando, FL, 32816, USA.

School of Science and Technology, Physics Division, University of Camerino, Camerino, 62032, Italy.

出版信息

Nat Commun. 2017 Sep 29;8(1):739. doi: 10.1038/s41467-017-00580-x.

Abstract

The information-carrying capacity of a single photon can be vastly expanded by exploiting its multiple degrees of freedom: spatial, temporal, and polarization. Although multiple qubits can be encoded per photon, to date only two-qubit single-photon quantum operations have been realized. Here, we report an experimental demonstration of three-qubit single-photon, linear, deterministic quantum gates that exploit photon polarization and the two-dimensional spatial-parity-symmetry of the transverse single-photon field. These gates are implemented using a polarization-sensitive spatial light modulator that provides a robust, non-interferometric, versatile platform for implementing controlled unitary gates. Polarization here represents the control qubit for either separable or entangling unitary operations on the two spatial-parity target qubits. Such gates help generate maximally entangled three-qubit Greenberger-Horne-Zeilinger and W states, which is confirmed by tomographical reconstruction of single-photon density matrices. This strategy provides access to a wide range of three-qubit states and operations for use in few-qubit quantum information processing protocols.Photons are essential for quantum information processing, but to date only two-qubit single-photon operations have been realized. Here the authors demonstrate experimentally a three-qubit single-photon linear deterministic quantum gate by exploiting polarization along with spatial-parity symmetry.

摘要

通过利用单光子的多个自由度

空间、时间和偏振,其信息承载能力可以得到极大扩展。尽管每个光子可以编码多个量子比特,但迄今为止仅实现了双比特单光子量子操作。在此,我们报告了三比特单光子线性确定性量子门的实验演示,该量子门利用了光子偏振和横向单光子场的二维空间奇偶对称性。这些量子门是使用偏振敏感空间光调制器实现的,该调制器为实现受控酉门提供了一个强大的、非干涉的、通用的平台。这里的偏振代表用于对两个空间奇偶目标量子比特进行可分离或纠缠酉操作的控制量子比特。这种量子门有助于生成最大纠缠的三比特格林伯格 - 霍恩 - 蔡林格态和W态,这通过单光子密度矩阵的层析重建得到证实。该策略为用于少量子比特量子信息处理协议的广泛三比特态和操作提供了途径。光子对于量子信息处理至关重要,但迄今为止仅实现了双比特单光子操作。在此,作者通过利用偏振以及空间奇偶对称性,实验演示了一个三比特单光子线性确定性量子门。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/167a/5622142/da8993a65edb/41467_2017_580_Fig1_HTML.jpg

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