Quantum Computation via Multiport Discretized Quantum Fourier Optical Processors

Mohammad Rezai;Jawad A. Salehi
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Abstract

The light's image is the primary source of information carrier in nature. Indeed, a single photon's image possesses a vast information capacity that can be harnessed for quantum information processing. Our scheme for implementing quantum information processing on a discretized photon wavefront via universal multiport processors employs a class of quantum Fourier optical systems composed of spatial phase modulators and 4f-processors with phase-only pupils having a characteristic periodicity that reduces the number of optical resources quadratically as compared to other conventional path-encoding techniques. In particular, this article employs quantum Fourier optics to implement some key quantum logical gates that can be instrumental in optical quantum computations. For instance, we demonstrate the principle by implementing the single-qubit Hadamard and the two-qubit controlled- not gates via simulation and optimization techniques. Due to various advantages of the proposed scheme, including the large information capacity of the photon wavefront, a quadratically reduced number of optical resources compared with other conventional path-encoding techniques, and dynamic programmability, the proposed scheme has the potential to be an essential contribution to linear optical quantum computing and optical quantum signal processing.
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通过多端口离散量子傅立叶光学处理器实现量子计算
光的图像是自然界信息载体的主要来源。事实上,单个光子的图像拥有巨大的信息容量,可用于量子信息处理。我们通过通用多端口处理器在离散光子波面上实现量子信息处理的方案,采用了一类量子傅里叶光学系统,该系统由空间相位调制器和4f处理器组成,其纯相位瞳孔具有周期性特征,与其他传统路径编码技术相比,可四倍减少光学资源的数量。本文特别利用量子傅立叶光学来实现一些关键的量子逻辑门,这些逻辑门在光量子计算中非常重要。例如,我们通过模拟和优化技术实现了单量子比特哈达玛门和双量子比特受控不门,证明了这一原理。与其他传统路径编码技术相比,该方案具有光子波阵面信息容量大、光学资源数量四倍减少以及动态可编程等多种优势,有望为线性光量子计算和光量子信号处理做出重要贡献。
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