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    Quantum metrology via adiabatic control of topological edge states

    Xingjian He1,2,*, Aoqian Shi3,*, Jianjun Liu3,4,†, and Jiangbin Gong1,2,‡

    • *These authors contributed equally to this work.
    • †Contact author: jianjun.liu@hnu.edu.cn
    • ‡Contact author: phygj@nus.edu.sg

    Phys. Rev. A 114, 032205 – Published 8 September, 2026

    DOI: https://doi.org/10.1103/5qsb-t9rf

    Abstract

    Criticality-based quantum sensing exploits hypersensitive response to system parameters near phase transition points. This work uncovers two metrological advantages offered by topological phase transitions when the probe is prepared as topological edge states. First, the order of topological band touching is found to determine how the metrology sensitivity scales with the system size. Engineering a topological phase transition with higher-order band touching is hence advocated, with the associated quantum Fisher information scaling as FQ∼L2p, with L the lattice size in one dimension, and p the order of band touching. Second, with a topological lattice accommodating degenerate edge modes (such as multiple zero modes), preparing an N-particle entangled state at the edge and then adiabatically tuning the system to the phase transition point grows quantum entanglement to macroscopic sizes, yielding FQ∼N2L2p. Favorable scalability is still achievable through multicriticality even when state preparation time and the shrinking sensing parameter window are taken into account. This work hence paves a possible topological phase transition-based route to harness entanglement, large lattice size, and high-order band touching for quantum metrology.

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