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

机译:使用空间光调制器的单光子三量子位量子逻辑

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摘要

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.
机译:单个光子的信息承载能力可以通过利用其多个自由度(空间,时间和极化)来大大扩展。尽管每个光子可以编码多个量子位,但是迄今为止,仅实现了两个量子位的单光子量子运算。在这里,我们报告了一个实验性演示,展示了利用光子极化和横向单光子场的二维空间奇偶性的三量子位单光子,线性,确定性量子门。这些门是使用偏振敏感的空间光调制器实现的,该调制器为实现受控的单一门提供了鲁棒的,非干涉性的通用平台。在此,极化表示两个空间奇偶目标量子位上可分离或纠缠的单一运算的控制量子位。这样的门有助于产生最大纠缠的三比特格林伯格-霍恩-泽林格和W态,这通过单光子密度矩阵的层析成像重建得以证实。该策略提供了访问广泛的三量子位状态和操作的机会,以用于少数量子位的量子信息处理协议。

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