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    Generation of energy-time-entangled triphotons in a six-level cold atomic system

    Ling Niu1, Zhiying Duan1, Na Liu1, Yitong Zhai1, Shaoyan Liu1, Junsheng Li2,*, Donghai Zhang2,†, and Da Zhang1,3,‡

    • 1School of Physics and Information Engineering, Shanxi Normal University, Taiyuan 030031, China
    • 2Institute of Modern Physics, Shanxi Normal University, Taiyuan 030031, China
    • 3Key Laboratory of Magnetic Molecules and Magnetic Information Materials, Ministry of Education, Taiyuan 030031, China

    • *Contact author: lijs@sxnu.edu.cn
    • †Contact author: zhangdh@sxnu.edu.cn
    • ‡Contact author: zhang1556433@sxnu.edu.cn

    Phys. Rev. A 113, 063708 – Published 4 June, 2026

    DOI: https://doi.org/10.1103/zyq6-2lfd

    Abstract

    Multiphoton entangled states are pivotal resources for implementing optical quantum information protocols. Recently, energy-time-entangled triphotons have been observed in hot atomic ensembles. However, in these protocols, the complex fifth-order nonlinear susceptibility entailed by four- or five-level systems limits our understanding of triphoton generation. Here, to directly capture the generation mechanism of triphotons and their associated optical properties, we investigate the generation of energy-time-entangled triphotons in a six-level cold atomic ensemble. The fifth-order nonlinear susceptibility indicates the existence of two sets of spontaneous six-wave mixing in the system. Notably, triphoton generation in this system is subject to stringent timing constraints. Collectively, these characteristics give rise to threefold coincidence counts, which—dominated by the fifth-order nonlinear susceptibility—exhibit asymmetrically damped Rabi oscillations in the two-dimensional time domain. Furthermore, we analytically derive that the temporal correlation properties of conditional two-photon states are preserved—a unique feature of W-class tripartite entanglement. These results not only lay the groundwork for the experimental preparation of triphotons using six-level systems but also provide key support for understanding the generation mechanism of triphotons involving more complex fifth-order nonlinear susceptibilities.

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