论文标题
与线性光学和时频编码合成任意单量门门的合成
Parallelizable Synthesis of Arbitrary Single-Qubit Gates with Linear Optics and Time-Frequency Encoding
论文作者
论文摘要
我们提出了新的方法,即具有高成功概率和栅极保真度的单个单位单位的精确合成,并考虑了时间键和频率键编码。所提出的方案在实验上可以通过光谱线性光量子计算(S- LOQC)平台实现,该平台由电磁相调节器和仅相位的可编程过滤器(脉冲塑料)组成。我们从编码中任意栅极生成的两个最简单的3组分配置的忠诚度和概率来评估表现,并使用单个电源射管驱动器(RF)的驱动器在时间键编码中合成任意单量单位统一的确切分析解决方案。我们进一步研究了与光谱和时间编码的紧凑实验设置在多个Qubit上的任意单量门门的并行化。我们系统地评估并讨论了RF带宽的影响 - 条件是驱动调制器的音调数量以及针对不同靶向门的编码的选择。此外,我们量化了可以并行合成的高保真度哈达姆门的数量,而在逼真的系统中驱动RF音调方面,资源最少和越来越多的资源。我们的分析位置将光谱S-LOQC视为一个有前途的平台,可以进行大规模平行的单量子量表操作,并具有潜在的量子计量学和量子层析成像的应用。
We propose novel methods for the exact synthesis of single-qubit unitaries with high success probability and gate fidelity, considering both time-bin and frequency-bin encodings. The proposed schemes are experimentally implementable with a spectral linear-optical quantum computation (S- LOQC) platform, composed of electro-optic phase modulators and phase-only programmable filters (pulse shapers). We assess the performances in terms of fidelity and probability of the two simplest 3-components configurations for arbitrary gate generation in both encodings and give an exact analytical solution for the synthesis of an arbitrary single-qubit unitary in the time-bin encoding, using a single-tone Radio Frequency (RF) driving of the EOMs. We further investigate the parallelization of arbitrary single-qubit gates over multiple qubits with a compact experimental setup, both for spectral and temporal encodings. We systematically evaluate and discuss the impact of the RF bandwidth - that conditions the number of tones driving the modulators - and of the choice of encoding for different targeted gates. We moreover quantify the number of high fidelity Hadamard gates that can be synthesized in parallel, with minimal and increasing resources in terms of driving RF tones in a realistic system. Our analysis positions spectral S-LOQC as a promising platform to conduct massively parallel single qubit operations, with potential applications to quantum metrology and quantum tomography.