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    Quantum metrological capability as a probe for quantum phase transitions

    Xiangbei Li1, Yaoming Chu1,*, Shaoliang Zhang1, and Jianming Cai1,2,†

    • 1School of Physics, Hubei Key Laboratory of Gravitation and Quantum Physics, International Joint Laboratory on Quantum Sensing and Quantum Metrology, Institute for Quantum Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China
    • 2Shanghai Key Laboratory of Magnetic Resonance, East China Normal University, Shanghai 200062, China

    • *Contact author: yaomingchu@hust.edu.cn
    • †Contact author: jianmingcai@hust.edu.cn

    Phys. Rev. B 112, 024302 – Published 7 July, 2025

    DOI: https://doi.org/10.1103/81vb-hf2f

    Abstract

    The comprehension of quantum phase transitions (QPTs) is considered as a critical foothold in the field of many-body physics. Developing protocols to effectively identify and understand QPTs thus represents a key but challenging task for present quantum simulation experiments. Here, we establish a dynamical quench-interferometric framework to probe a zero-temperature QPT, which utilizes the evolved state by quenching the QPT Hamiltonian as input of a unitary interferometer. The metrological capability quantified by the quantum Fisher information shows a unique peak in the vicinity of the quantum critical point, allowing us to probe the QPT without cooling the system to its ground state. We show that the probing can be implemented by extracting quantum fluctuations of the interferometric generator as well as parameter estimation uncertainty of the interferometric phase and subsequently allows identifying the boundary of the phase diagram. Our results establish an important link between QPTs and quantum metrology and enrich the toolbox of studying nonequilibrium many-body physics in current quantum simulators.

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