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Bibliographic Details
Main Authors: Yan, Jun-Yong, Li, Fang-Yuan, Zhou, Zhou, Mu, Yue-Yao, Ge, Hang-Yu, Kruger, Severin, Chen, Jianfeng, Wang, Zhe, Shi, Fulong, Liu, Mengqi, Qin, Haoye, Che, Ying, Wang, Yu-Tong, Zhang, Yunyan, Han, Song, Yang, Zongyin, Jin, Chaoyuan, Liu, Huiyun, Ludwig, Arne, Liu, Feng, Qiu, Cheng-Wei
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2603.23061
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Table of Contents:
  • Structured quantum light is crucial for high-dimensional quantum information processing, yet its direct generation from quantum emitters remains challenging due to their intrinsic locality and omnidirectional radiation. Metasurfaces have been adopted for quantum-light wavefront shaping, typically in cascaded or stacked configurations that suffer from low efficiency and limited resolution. Here, we demonstrate a semiconductor metasource that directly embodies single quantum dots in a nonlocal GaAs metasurface. Spontaneous emission from quantum dot is efficiently funneled into an extended quasi-bound-state-in-the-continuum mode while sustaining strong mode-emitter overlap. A lateral core-barrier heterostructure tunes mode volume and spatial distribution to balance Purcell enhancement and holographic resolution. Using spatially modulated geometric phase, our compact metasource enables deterministic generation of diverse single-photon radiation patterns, including orbital-angular-momentum beams and holographic images. Our work brings versatile single-photon wavefront control into the nanoscale cavity quantum electrodynamics regime, offering a scalable route toward integrated sources of structured quantum light.