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    On-Chip Generation of Copolarized and Spectrally Separable Photon Pairs

    Xiaojie Wang1,2, Lin Zhou1,2, Yue Li1, Sakthi Sanjeev Mohanraj1, Xiaodong Shi3,4, Zhuoyang Yu1,2, Ran Yang1, Xu Chen1, Guangxing Wu1,2 et al.

    Hao Hao2, Sihao Wang3,4, Veerendra Dhyani3,4, and Di Zhu1,2,3,4,*

    • *Contact author: dizhu@nus.edu.sg

    Phys. Rev. Lett. 136, 253801 – Published 23 June, 2026

    DOI: https://doi.org/10.1103/cpwf-k58g

    Abstract

    On-chip generation of high-purity single photons is essential for scalable photonic quantum technologies. Spontaneous parametric down conversion (SPDC) is widely used to generate photon pairs for heralded single-photon sources, but intrinsic spectral correlations of the pairs often limit the purity and interference visibility of the heralded photons. Existing approaches to suppress these correlations rely on narrowband spectral filtering, which introduces loss, or exploiting different polarizations, which complicates on-chip integration. Here, we exploit higher-order spatial modes to enable spectrally separable photon-pair generation in thin-film lithium niobate nanophotonic circuits, with all interacting fields residing in the same polarization. Spectral separability is achieved by engineering group-velocity matching using higher-order transverse-electric modes, combined with a Gaussian-apodized poling profile to further suppress residual correlations inherent to standard periodic poling. Subsequent on-chip mode conversion with efficiency exceeding 95% maps the higher-order mode to the fundamental mode and routes the photons into distinct output channels. The resulting heralded photons exhibit spectral purities up to 94% inferred from joint-spectral intensity and 89% from unheralded g(2) measurement. This approach enables flexible spectral and temporal engineering of on-chip quantum light sources for quantum computing and quantum networking.

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