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Quantum interference of topological states of light

机译:光拓扑状态的量子干涉

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Topological insulators are materials that have a gapped bulk energy spectrum but contain protected in-gap states appearing at their surface. These states exhibit remarkable properties such as unidirectional propagation and robustness to noise that offer an opportunity to improve the performance and scalability of quantum technologies. For quantum applications, it is essential that the topological states are indistinguishable. We report high-visibility quantum interference of single-photon topological states in an integrated photonic circuit. Two topological boundary states, initially at opposite edges of a coupled waveguide array, are brought into proximity, where they interfere and undergo a beamsplitter operation. We observe Hong-Ou-Mandel interference with 93.1 ± 2.8% visibility, a hallmark nonclassical effect that is at the heart of linear optics–based quantum computation. Our work shows that it is feasible to generate and control highly indistinguishable single-photon topological states, opening pathways to enhanced photonic quantum technology with topological properties, and to study quantum effects in topological materials.
机译:拓扑绝缘体是具有带隙的本体能谱但包含在其表面出现的受保护的带隙状态的材料。这些状态表现出非凡的特性,例如单向传播和对噪声的鲁棒性,这些特性为改善量子技术的性能和可扩展性提供了机会。对于量子应用,拓扑状态不可区分是至关重要的。我们报告了集成光子电路中单光子拓扑状态的高可见度量子干扰。最初在耦合波导阵列的相对边缘处的两个拓扑边界状态接近,并在其中干涉并进行分束器操作。我们观察到Hong-Ou-Mandel干涉具有93.1±2.8%的可见度,这是基于线性光学的量子计算的核心特征,非经典效应。我们的工作表明,生成和控制高度不可区分的单光子拓扑状态,为具有拓扑特性的增强型光子量子技术开辟途径以及研究拓扑材料中的量子效应是可行的。

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