Quantum Brain
← Back to papers

Topologically Protected Valley-Dependent Quantum Photonic Circuits.

Yang Chen, Xin-Tao He, Yujie Cheng, Hao-Yang Qiu, Lantian Feng, Ming Zhang, Daoxin Dai, G. Guo, Jianwen Dong, Xifeng Ren·March 11, 2021·DOI: 10.1103/PhysRevLett.126.230503
MedicinePhysics

AI Breakdown

Get a structured breakdown of this paper — what it's about, the core idea, and key takeaways for the field.

Abstract

Topological photonics has been introduced as a powerful platform for integrated optics, since it can deal with robust light transport, and be further extended to the quantum world. Strikingly, valley-contrasting physics in topological photonic structures contributes to valley-related edge states, their unidirectional coupling, and even valley-dependent wave division in topological junctions. Here, we design and fabricate nanophotonic topological harpoon-shaped beam splitters (HSBSs) based on 120-deg-bending interfaces and demonstrate the first on-chip valley-dependent quantum information process. Two-photon quantum interference, namely, Hong-Ou-Mandel interference with a high visibility of 0.956±0.006, is realized with our 50/50 HSBS, which is constructed by two topologically distinct domain walls. Cascading this kind of HSBS together, we also demonstrate a simple quantum photonic circuit and generation of a path-entangled state. Our work shows that the photonic valley state can be used in quantum information processing, and it is possible to realize more complex quantum circuits with valley-dependent photonic topological insulators, which provides a novel method for on-chip quantum information processing.

Related Research

Quantum Intelligence

Ask about quantum research, companies, or market developments.