论文标题

用光子高阶拓扑晶体绝缘子保护量子叠加和纠缠

Protecting Quantum Superposition and Entanglement with Photonic Higher-Order Topological Crystalline Insulator

论文作者

Wang, Yao, Xie, Bi-Ye, Lu, Yong-Heng, Chang, Yi-Jun, Wang, Hong-Fei, Gao, Jun, Jiao, Zhi-Qiang, Feng, Zhen, Xu, Xiao-Yun, Mei, Feng, Jia, Suotang, Lu, Ming-Hui, Jin, Xian-Min

论文摘要

作为新发现的非平凡材料和结构,高阶拓扑绝缘子具有超出构成对应的拓扑阶段。在这里,我们提出了光子高阶拓扑结晶绝缘子的实验观察及其对二维晶格中量子叠加和纠缠的拓扑保护。通过使用飞秒激光自由编写绝缘体结构,并通过单光子成像技术直接测量进化动力学,我们能够观察C_4和C_2光子晶格对称性中拓扑角状态的独特特征。尤其是,我们通过用单次叠加态激发光子晶格并在实验上识别拓扑角状态,并研究拓扑对纠缠光子状态的量子纠缠的保护影响。单光子动力学和受保护的纠缠揭示了一种固有的拓扑保护机制,从扩散引起的分离中隔离了多目标量子状态。此处链接拓扑,材料和量子物理学的较高层状晶体绝缘子,内置的叠加状态产生,预示着单光子成像和量子纠缠,为高阶拓扑和拓扑增强的真实量子制度的应用打开了大门。

Higher-order topological insulator, as a newly found non-trivial material and structure, possesses a topological phase beyond the bulk-boundary correspondence. Here, we present an experimental observation of photonic higher-order topological crystalline insulator and its topological protection to quantum superposition and entanglement in a two-dimensional lattice. By freely writing the insulator structure with femtosecond laser and directly measuring evolution dynamics with single-photon imaging techniques, we are able to observe the distinct features of the topological corner states in C_4 and C_2 photonic lattice symmetry. Especially, we propose and experimentally identify the topological corner states by exciting the photonic lattice with single-photon superposition state, and we examine the protection impact of topology on quantum entanglement for entangled photon states. The single-photon dynamics and the protected entanglement reveal an intrinsic topological protection mechanism isolating multi-partite quantum states from diffusion-induced decoherence. The higher-order topological crystalline insulator, built-in superposition state generation, heralded single-photon imaging and quantum entanglement demonstrated here link topology, material, and quantum physics, opening the door to wide investigations of higher-order topology and applications of topological enhancement in genuine quantum regime.

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