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利用偏振和空间模式自由度进行自纠错的超并行光子量子计算。

Self-error-corrected hyperparallel photonic quantum computation working with both the polarization and the spatial-mode degrees of freedom.

作者信息

Wang Guan-Yu, Li Tao, Ai Qing, Deng Fu-Guo

出版信息

Opt Express. 2018 Sep 3;26(18):23333-23346. doi: 10.1364/OE.26.023333.

Abstract

Usually, the hyperparallel quantum computation can speed up quantum computing, reduce the quantum resource consumed largely, resist to noise, and simplify the storage of quantum information. Here, we present the first scheme for the self-error-corrected hyperparallel photonic quantum computation working with both the polarization and the spatial-mode degrees of freedom of photon systems simultaneously. It can prevent bit-flip errors from happening with an imperfect nonlinear interaction in the nearly realistic condition. We give the way to design the universal hyperparallel photonic quantum controlled-NOT (CNOT) gate on a two-photon system, resorting to the nonlinear interaction between the circularly polarized photon and the electron spin in the quantum dot in a double-sided microcavity system, by taking the imperfect interaction in the nearly realistic condition into account. Its self-error-corrected pattern prevents the bit-flip errors from happening in the hyperparallel quantum CNOT gate, guarantees the robust fidelity, and relaxes the requirement for its experiment. Meanwhile, this scheme works in a failure-heralded way. Also, we generalize this approach to achieve the self-error-corrected hyperparallel quantum CNOTN gate working on a multiple-photon system. These good features make this scheme more useful in the photonic quantum computation and quantum communication in the future.

摘要

通常,超并行量子计算能够加速量子计算,大幅减少所消耗的量子资源,抵抗噪声,并简化量子信息的存储。在此,我们提出了首个同时利用光子系统的偏振和空间模式自由度进行工作的自纠错超并行光子量子计算方案。在近乎实际的条件下,它能够通过不完善的非线性相互作用防止比特翻转错误的发生。我们给出了在双光子系统上设计通用超并行光子量子受控非门(CNOT门)的方法,借助双面微腔系统中圆偏振光子与量子点中电子自旋之间的非线性相互作用,并考虑了近乎实际条件下的不完善相互作用。其自纠错模式可防止超并行量子CNOT门中比特翻转错误的发生,保证了稳健的保真度,并放宽了对其实验的要求。同时,该方案以故障宣告的方式工作。此外,我们将此方法推广以实现作用于多光子系统的自纠错超并行量子CNOTN门。这些优良特性使得该方案在未来的光子量子计算和量子通信中更具实用性。

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