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    Heralded qudit-based high-dimensional entanglement generation for hybrid photon-emitter system by waveguide-mediated scattering

    Fang-Fang Du1,2,*, Ling-Hui Li1, Qiu-Lin Tan1,2, and Zhuo-Ya Bai3,†

    • 1State Key Laboratory of Extreme Environment Optoelectronic Dynamic Testing Technology and Instrument, North University of China, Tai Yuan 030051, China
    • 2Key Laboratory of Micro/Nano Devices and Systems, Ministry of Education, North University of China, Tai Yuan 030051, China
    • 3Beijing National Research Center for Information Science and Technology, Department of Electronic Engineering, Tsinghua University, Beijing 100084, China

    • *Contact author: Duff@nuc.edu.cn
    • †Contact author: zybai@mail.tsinghua.edu.cn

    Phys. Rev. A 112, 062411 – Published 8 December, 2025

    DOI: https://doi.org/10.1103/vww1-c983

    Abstract

    Quantum entanglement systems based on qudits dilate high-dimensional (HD) state spaces and enhance resistance to loss in quantum information processing (QIP). To fully exploit this potential, effective schemes for generating HD entanglement are crucial. In this paper, we propose a flexible heralded scheme generating random four-dimensional (4D) two-qudit maximal entanglement for a hybrid photon-emitter system by entering different input ports. This approach can be further extended to prepare 4D n-qudit (n≥3) maximal entanglement utilizing the 4D single-qudit Zm(m=1,2,3) gate for the first qudit and Xm gate for the other qudits (except the second qudit). For the hybrid system, the first 4D qudit is encoded on the hybrid polarization-path states of a flying photon, while the second and subsequent 4D qudits are represented by two stationary emitters coupled to the respective 1D waveguide. The qudit-encoded hybrid HD entanglement offers advantages over economizing quantum resource without any auxiliary qudits and obtaining robust fidelities of various HD entanglement by the error-detected mechanism of the emitter-waveguide systems. Moreover, the proposed protocol can be spread to generate dD n-qudit (d≥2p+1, n,p=2,3,⋯) entangled states, further broadening its applicability in HD QIP.

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