论文标题

时间捕获:通往强耦合和确定性光学量子计算的途径

Temporal trapping: a route to strong coupling and deterministic optical quantum computation

论文作者

Yanagimoto, Ryotatsu, Ng, Edwin, Jankowski, Marc, Mabuchi, Hideo, Hamerly, Ryan

论文摘要

确定性光子仪门的实现是光学量子计算和工程中的中心目标。一个长期以来的挑战是,由于现有光子结构的关键损失损失折衷方案,可扩展的室温材料平台中的光学非线性太弱,无法实现所需的强耦合。在这项工作中,我们介绍了一种新颖的限制方法,分散工程的时间诱捕,以绕过权衡,铺平了通往全光强耦合的途径。时间限制是通过辅助陷阱脉冲通过跨相调制施加的,该辅助陷阱脉冲与波导的空间限制相结合,产生了一个“飞行腔”,从而至少提高了非线性相互作用强度的数量级。数值模拟证实,时间陷阱将多模型非线性动力学限制在单模子空间中,从而实现了高保真性确定性量子门操作。借助逼真的分散工程和损失数字,我们表明暂时捕获的超短脉冲可以在近期非线性纳米光子平台上实现强耦合。我们的结果突出了超快非线性光学器件的潜力,成为第一个可扩展,高带宽和室温平台,该平台可实现较强的耦合,为量子计算,仿真和光源打开了新的途径。

The realization of deterministic photon-photon gates is a central goal in optical quantum computation and engineering. A longstanding challenge is that optical nonlinearities in scalable, room-temperature material platforms are too weak to achieve the required strong coupling, due to the critical loss-confinement tradeoff in existing photonic structures. In this work, we introduce a novel confinement method, dispersion-engineered temporal trapping, to circumvent the tradeoff, paving a route to all-optical strong coupling. Temporal confinement is imposed by an auxiliary trap pulse via cross-phase modulation, which, combined with the spatial confinement of a waveguide, creates a "flying cavity" that enhances the nonlinear interaction strength by at least an order of magnitude. Numerical simulations confirm that temporal trapping confines the multimode nonlinear dynamics to a single-mode subspace, enabling high-fidelity deterministic quantum gate operations. With realistic dispersion engineering and loss figures, we show that temporally trapped ultrashort pulses could achieve strong coupling on near-term nonlinear nanophotonic platforms. Our results highlight the potential of ultrafast nonlinear optics to become the first scalable, high-bandwidth, and room-temperature platform that achieves a strong coupling, opening a new path to quantum computing, simulation, and light sources.

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