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    Parameter trajectory engineering for state transfer and quantum sensing in non-Hermitian two-level systems

    Qi-Cheng Wu1,2,3,*, Yan-Hui Zhou1,3, Biao-liang Ye1, Tong Liu1, Yi-Hao Kang2, Qi-Ping Su2, and Chui-Ping Yang2,†

    • *Contact author: wuqi.cheng@163.com
    • †Contact author: yangcp@hznu.edu.cn

    Phys. Rev. A 114, 022610 – Published 10 August, 2026

    DOI: https://doi.org/10.1103/k7q2-1dpl

    Abstract

    Exceptional points (EPs) in non-Hermitian (NH) systems give rise to enhanced sensitivity and chiral state transfer, which are important for quantum technologies. Although parameter trajectories encircling EPs can control symmetric and chiral state transfer, their robustness against practical perturbations and their role in quantum sensing remain largely unexplored. Here, we study three time-modulated parameter loops in an NH two-level system to show how trajectory design governs state-transfer symmetry, robustness, and sensing performance. Trajectories avoiding the exceptional point (EP) support robust symmetric transfer, while those encircling the EP yield chiral transfer governed by the topological winding number ν=±1/2, whose robustness depends on the distance to the EP and the encircling direction. For quantum sensing, trajectory engineering enables tuning of sensitivity amplitude, time window, and parameter selectivity in both eigenvalue-based and eigenstate-based sensors. Notably, eigenstate-based sensing achieves full parameter selectivity that is unattainable with eigenvalue-based methods. Our results establish a quantitative connection between trajectory topology and system dynamics, providing a unified framework for robust state-transfer protocols and high-performance quantum sensors.

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