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    Spectrally Uniform Continuous-Variable Quantum Microcombs

    Kangkang Li1,*,†, Yue Wang1,*, Ze Wang1,*, Xin Zhou2,*, Jincheng Li2,3, Yinke Cheng1, Binyan Wu1, Qihuang Gong1,4,5,6, Bei-Bei Li2,‡ et al.

    Qi-Fan Yang1,4,5,6,§

    • *These authors contributed equally to this work.
    • †Contact author: kangkangli@pku.edu.cn
    • ‡Contact author: libeibei@iphy.ac.cn
    • §Contact author: leonardoyoung@pku.edu.cn.

    Phys. Rev. Lett. 137, 023802 – Published 7 July, 2026

    DOI: https://doi.org/10.1103/vjtv-2prg

    Abstract

    Continuous-variable (CV) quantum microcombs generated in high-Q microresonators provide compact, frequency-multiplexed sources of entangled modes for integrated quantum information processing. Although deterministic Kerr-induced two-mode squeezing has been demonstrated on chip, achieving uniform squeezing across a large number of mode pairs remains a central challenge. Here we establish the conditions required for spectrally uniform squeezing and experimentally realize a vacuum-state CV quantum microcomb by combining a microresonator with an engineered single-family mode structure and optimized pump conditions. The device generates 14 independent two-mode squeezed states over a 0.7 THz bandwidth, each exhibiting more than 4 dB of raw squeezing, with a maximum of 4.3 dB. This uniform, high-performance quantum resource represents a key step toward scalable, integrated CV quantum technologies operating beyond classical limits.

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