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    Dynamic anomaly in a metallic glass-forming melt revisited: A Griffiths-like perspective

    Lin Ma1, Xiaodong Yang1, Xinjia Zhou1, Gang Sun2,*, and Zhen Wei Wu1,†

    • *Contact author: gangsun@bnu.edu.cn
    • †Contact author: zwwu@bnu.edu.cn

    Phys. Rev. B 113, 184202 – Published 4 May, 2026

    DOI: https://doi.org/10.1103/fvj4-qjtf

    Abstract

    Complex fluids such as water exhibits many anomalous phenomena, and research suggests these properties are closely tied to critical fluctuations near the liquid-liquid phase transition critical point (LLCP). However, whether a similar LLCP exists in metallic glass-forming liquids, which are notable for their high atomic coordination, remains an open question. Although dynamic anomalies such as the breakdown of the Stokes-Einstein (SE) relation have often been attributed to dynamic heterogeneity or structural changes, relatively few studies have analyzed these anomalies from a thermodynamic-fluctuation perspective. This gap probably stems from the challenges in detecting density-driven phase transitions in such systems. Here, we use numerical simulations to explore the thermodynamic mechanisms behind dynamic anomalies in a prototypical metallic glass-forming melt. We observe substantial thermodynamic fluctuations near a particular region, which likely corresponds to a frustration state of liquid, vapor, and glass. These fluctuations may contribute to the violation of the SE relation. Our findings offer a fresh Griffiths-like perspective on the dynamic anomalies seen in supercooled metallic liquids, and shed light on their underlying mechanisms.

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