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    Real-space atomic dynamics in liquid gallium studied by inelastic neutron scattering

    Chengyun Hua1,*, Yadu K. Sarathchandran2, Eva Zarkadoula3, Wojciech Dmowski4, Douglas L. Abernathy5, Takeshi Egami2,1,4, and Yuya Shinohara1,†

    • *Contact author: huac@ornl.gov
    • †Contact author: shinoharay@ornl.gov

    Phys. Rev. B 113, 104314 – Published 24 March, 2026

    DOI: https://doi.org/10.1103/pgjn-f95f

    Abstract

    Gallium is a prototypical liquid metal and has gained renewed attention because of its unique properties. Characterizing and elucidating its atomic dynamics remains elusive despite numerous studies, primarily because of the challenges in quantifying atomic-scale dynamics in liquids. Recent developments in inelastic neutron scattering enable us to measure the Van Hove correlation function that describes the real-space motion of liquid atoms. In this work, we use this approach to reveal the dynamics in gallium liquids and find the co-existence of two dynamical medium-range orders (MROs), which have a dynamical behavior distinct from that of the short-range order (SRO). We propose that these MROs are driven by global forces in the form of two density waves, as a direct consequence of the underlying competition between ionic core repulsion and valence electron cohesion. We suggest that the density wave approach is not only applicable to other metallic liquids exhibiting similar structural anomalies, but also offers a promising direction for elucidating the dynamics of complex liquids and glasses by linking electronic-state fluctuations to atomic dynamics.

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    See Also

    Complexity in the medium-range order of gallium as a polyvalent liquid metal

    Chengyun Hua, Yadu K. Sarathchandran, Eva Zarkadoula, Wojciech Dmowski, Douglas L. Abernathy, Yuya Shinohara, and Takeshi Egami
    Phys. Rev. B 113, L100202 (2026)

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