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Proposal for low-power atom trapping on a GaN-on-sapphire chip

Aiping Liu, Lei Xu, Xin-Biao Xu, Guang-Jie Chen, Pengfei Zhang, G. Xiang, Guang-can Guo, Qin Wang, Chang-ling Zou·May 24, 2022·DOI: 10.1103/PhysRevA.106.033104
Physics

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Abstract

The hybrid photon-atom integrated circuits, which include photonic microcavities and trapped single neutral atom in their evanescent field, are of great potential for quantum information processing. In this platform, the atoms provide the single-photon nonlinearity and long-lived memory, which are complementary to the excellent passive photonics devices in conventional quantum photonic circuits. In this work, we propose a stable platform for realizing the hybrid photon-atom circuits based on an unsuspended photonic chip. By introducing high-order modes in the microring, a feasible evanescent-field trap potential well ∼ 0 . 3mK could be obtained by only 10mW-level power in the cavity, compared with 100mW-level power required in the scheme based on fundamental modes. Based on our scheme, stable single atom trapping with relatively low laser power is feasible for future studies on high-fidelity quantum gates, single-photon sources, as well as many-body quantum physics based on a controllable atom array in a microcavity.

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