A hybrid-frequency programmable synthetic-dimension simulator with rich coupling on a single chip.

IF 23.4 Q1 OPTICS
Xiao-Dong Zeng,Zhao-An Wang,Jia-Ming Ren,Yi-Tao Wang,Chun Ao,Wei Liu,Nai-Jie Guo,Lin-Ke Xie,Jun-You Liu,Yu-Hang Ma,Ya-Qi Wu,Shuang Wang,Pei-Yun Li,Mu Yang,Jin-Shi Xu,Xi-Wang Luo,Jian-Shun Tang,Chuan-Feng Li,Guang-Can Guo
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Abstract

High-performance photonic chips provide a powerful platform for analog computing, enabling the simulation of high-dimensional physical systems using low-dimensional devices with additional synthetic dimensions. The realization of large-scale complex simulations necessitates an architecture capable of rich coupling configurations (encompassing symmetric, asymmetric and long-range coupling schemes) which is also crucial for scaling up. Previous approaches rely on excessive physical components to introduce asymmetric coupling, however, are restricted in reconfiguring and scaling by the relatively complicated structures. Here, to solve this problem, we propose a hybrid-frequency synthetic-dimension simulator architecture that combines both intra-resonant and inter-resonant frequency-lattice sites, and experimentally demonstrate it using the thin-film lithium niobate (TFLN) photonic chip. Employing this hybrid programmable architecture, we are able to simulate both the regular and long-range coupled forms of diverse compound-lattice models, such as the Hall ladder, Creutz ladder (symmetric) and Su-Schrieffer-Heeger (SSH, asymmetric) model, on a single chip, simultaneously reducing the experimental requirements significantly. As results, the direct readout of the bandstructure of the SSH model is able to be achieved, to be distinguished from all previous works, and important phenomena such as spin-momentum locking, topological flat band and Aharonov-Bohm cage effect are also observed with lower experimental requirements. Furthermore, applications like piecewise-continuous optical frequency shifting can be enabled by cascading our devices. Our results offer promising insights for future large-scale complex on-chip simulators with rich couplings.
在单芯片上实现了一种多耦合的混合频率可编程综合尺寸模拟器。
高性能光子芯片为模拟计算提供了一个强大的平台,可以使用具有额外合成维度的低维设备模拟高维物理系统。大规模复杂模拟的实现需要一种能够支持丰富耦合配置(包括对称、非对称和远程耦合方案)的体系结构,这对于扩展也是至关重要的。以前的方法依赖于过多的物理组件来引入非对称耦合,但是由于结构相对复杂,在重新配置和缩放方面受到限制。为了解决这一问题,我们提出了一种结合共振内和共振间频率点阵的混合频率合成维模拟器架构,并使用薄膜铌酸锂(TFLN)光子芯片进行了实验验证。采用这种混合可编程架构,我们能够在单个芯片上模拟各种化合物晶格模型的规则和远程耦合形式,例如Hall阶梯,Creutz阶梯(对称)和Su-Schrieffer-Heeger (SSH,非对称)模型,同时显着降低了实验要求。结果,可以直接读出SSH模型的能带结构,区别于以往的所有工作,并以较低的实验要求观察到自旋动量锁定、拓扑平带和Aharonov-Bohm笼效应等重要现象。此外,像分段连续光学频移这样的应用可以通过级联我们的设备来实现。我们的研究结果为未来具有丰富耦合的大型复杂片上模拟器提供了有希望的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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803
审稿时长
2.1 months
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