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具有标量和矢量规范势的合成时变界面上的可重构折射操纵。

Reconfigurable refraction manipulation at synthetic temporal interfaces with scalar and vector gauge potentials.

机构信息

Wuhan National Laboratory for Optoelectronics and School of Physics, Huazhong University of Science and Technology, Wuhan 430074, China.

Optics Valley Laboratory, Hubei 430074, China.

出版信息

Proc Natl Acad Sci U S A. 2023 May 16;120(20):e2300860120. doi: 10.1073/pnas.2300860120. Epub 2023 May 8.

Abstract

Photonic gauge potentials, including scalar and vector ones, play fundamental roles in emulating photonic topological effects and for enabling intriguing light transport dynamics. While previous studies mainly focus on manipulating light propagation in uniformly distributed gauge potentials, here we create a series of gauge-potential interfaces with different orientations in a nonuniform discrete-time quantum walk and demonstrate various reconfigurable temporal-refraction effects. We show that for a lattice-site interface with the potential step along the lattice direction, the scalar potentials can yield total internal reflection (TIR) or Klein tunneling, while vector potentials manifest direction-invariant refractions. We also reveal the existence of penetration depth for the temporal TIR by demonstrating frustrated TIR with a double lattice-site interface structure. By contrast, for an interface emerging in the time-evolution direction, the scalar potentials have no effect on the packet propagation, while the vector potentials can enable birefringence, through which we further create a "temporal superlens" to achieve time-reversal operations. Finally, we experimentally demonstrate electric and magnetic Aharonov-Bohm effects using combined lattice-site and evolution-step interfaces of either scalar or vector potential. Our work initiates the creation of artificial heterointerfaces in synthetic time dimension by employing nonuniformly and reconfigurable distributed gauge potentials. This paradigm may find applications in optical pulse reshaping, fiber-optic communications, and quantum simulations.

摘要

光子规范势,包括标量和矢量规范势,在模拟光子拓扑效应和实现有趣的光传输动力学方面发挥着重要作用。虽然以前的研究主要集中在操纵均匀分布规范势中的光传播,但在这里,我们在非均匀离散时间量子行走中创建了一系列具有不同取向的规范势界面,并展示了各种可重构的时间折射效应。我们表明,对于沿晶格方向具有势阶的晶格位界面,标量势可以产生全内反射(TIR)或克莱因隧道,而矢量势表现出方向不变的折射。我们还通过演示具有双晶格位界面结构的受挫 TIR 来揭示时间 TIR 的穿透深度的存在。相比之下,对于出现在时间演化方向上的界面,标量势对数据包传播没有影响,而矢量势可以实现双折射,通过这种方式,我们进一步创建了一个“时间超透镜”来实现时间反转操作。最后,我们通过组合使用标量或矢量势的晶格位和演化步界面,实验演示了电和磁 Aharonov-Bohm 效应。我们的工作通过采用非均匀和可重构的分布式规范势,在合成时间维度上开创了人工异质界面的创建。该范例可应用于光学脉冲整形、光纤通信和量子模拟。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/201d/10193993/fbc15b14ea20/pnas.2300860120fig01.jpg

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