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    Hyperpolarized Molecular Nuclear Spins Achieve Magnetic Amplification

    Shengbang Zhou1,3, Qing Li1,3, Yi Ren1, Jingyan Xu4,5,6, Raphael Kircher4,5,6, Danila A. Barskiy4,5,6,7, Dmitry Budker4,5,6,8, Min Jiang1,*, and Xinhua Peng1,2,3,†

    • *Contact author: dxjm@ustc.edu.cn
    • †Contact author: xhpeng@ustc.edu.cn

    Phys. Rev. Lett. 136, 133201 – Published 2 April, 2026

    DOI: https://doi.org/10.1103/36n5-fkb2

    Abstract

    The use of nuclear spins as physical sensing systems is disadvantaged by their low signal responsivity, particularly when compared to sensing techniques based on electron spins. This primarily results from the small nuclear gyromagnetic ratio and the difficulties in achieving high spin polarization. Here we develop a new approach to investigating the response of hyperpolarized molecular nuclear spins to magnetic fields and demonstrate orders-of-magnitude enhanced magnetic responsivity over state-of-the-art proton and Overhauser magnetometers. Using hyperpolarized molecules with proton spins, we report the realization of magnetic amplification in linear and nonlinear types. We further extend this amplification to hyperpolarized scalar-coupled multispin molecules and observe substantial magnetic amplification exceeding 10%. Moreover, we observe an anomalous amplification with dispersive frequency dependence that originates from magnetic interference effects. Our Letter highlights the potential of hyperpolarized molecular nuclear spins for use in a new class of quantum sensors, with promising applications in both applied and fundamental physics, including highly accurate absolute magnetometry and the exploration of axion–nucleon exotic interactions.

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