论文标题

使用光学参数放大器进行超快通用量子信息处理的量子非态度测量

Quantum nondemolition measurements with optical parametric amplifiers for ultrafast universal quantum information processing

论文作者

Yanagimoto, Ryotatsu, Nehra, Rajveer, Hamerly, Ryan, Ng, Edwin, Marandi, Alireza, Mabuchi, Hideo

论文摘要

Realization of a room-temperature ultra-fast photon-number-resolving (PNR) quantum nondemolition (QND) measurement would have significant implications for photonic quantum information processing (QIP), enabling, e.g., deterministic quantum computation in discrete-variable architectures, but the requirement for strong coupling has hampered the development of scalable implementations.在这项工作中,我们使用二次(即$χ^{(2)} $)非线性相互作用提出和分析了PNR QND的非线性光学路线。我们表明,驱动相位不匹配的光学参数放大器(OPA)体验的相干泵场以信号Bogoliubov激发数量为条件的位移。因此,对泵位移的测量提供了信号Bogoliubov激发的QND测量,将信号模式投射到挤压的光子数量状态。然后,我们展示如何将非线性OPA动力学用于确定性地生成Gottesman-Kitaev-Preskill状态,仅具有额外的高斯资源,为连续变量系统中提供了全光途径,以实现易于故障的QIP。最后,我们通过强调相配的光学参数振荡器和多级原子 - 载体QED系统之间的类比,将这些QND方案置于更传统的环境中,通过显示如何连续监测超出耦合的泵的泵浦正交诱导腔内信号的有条件地定位到壁内信号模式上的光子模式的状态。我们的分析表明,我们的建议可能在近期$χ^{(2)} $非线性纳米光子学中可行,强调了OPA作为超快非高斯量子状态工程和量子计算的通用工具的丰富潜力。

Realization of a room-temperature ultra-fast photon-number-resolving (PNR) quantum nondemolition (QND) measurement would have significant implications for photonic quantum information processing (QIP), enabling, e.g., deterministic quantum computation in discrete-variable architectures, but the requirement for strong coupling has hampered the development of scalable implementations. In this work, we propose and analyze a nonlinear-optical route to PNR QND using quadratic (i.e., $χ^{(2)}$) nonlinear interactions. We show that the coherent pump field driving a phase-mismatched optical parametric amplifier (OPA) experiences displacements conditioned on the number of signal Bogoliubov excitations. A measurement of the pump displacement thus provides a QND measurement of the signal Bogoliubov excitations, projecting the signal mode to a squeezed photon-number state. We then show how our nonlinear OPA dynamics can be utilized for deterministically generating Gottesman-Kitaev-Preskill states only with additional Gaussian resources, offering an all-optical route for fault-tolerant QIP in continuous-variable systems. Finally, we place these QND schemes into a more traditional context by highlighting analogies between the phase-mismatched optical parametric oscillator and multilevel atom-cavity QED systems, by showing how continuous monitoring of the outcoupled pump quadrature induces conditional localization of the intracavity signal mode onto squeezed photon-number states. Our analysis suggests that our proposal may be viable in near-term $χ^{(2)}$ nonlinear nanophotonics, highlighting the rich potential of OPA as a universal tool for ultrafast non-Gaussian quantum state engineering and quantum computation.

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