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Configuration correlation governs slow dynamics of supercooled metallic liquids

机译:构型相关性控制过冷金属液体的慢动力学

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摘要

The origin of dramatic slowing down of dynamics in metallic glass-forming liquids toward their glass transition temperatures is a fundamental but unresolved issue. Through extensive molecular dynamics simulations, here we show that, contrary to the previous beliefs, it is not local geometrical orderings extracted from instantaneous configurations but the intrinsic correlation between configurations that captures the structural origin governing slow dynamics. More significantly, it is demonstrated by scaling analyses that it is the correlation length extracted from configuration correlation rather than dynamic correlation lengths that is the key to determine the drastic slowdown of supercooled metallic liquids. The key role of the configuration correlation established here sheds important light on the structural origin of the mysterious glass transition and provides an essential piece of the puzzle for the development of a universal theoretical understanding of glass transition in glasses.
机译:金属玻璃形成液体的动力学朝玻璃转化温度急剧降低的根源是一个基本但尚未解决的问题。通过广泛的分子动力学模拟,在这里我们表明,与以前的观点相反,不是从瞬时构型中提取出局部几何有序,而是构型之间的内在联系捕获了控制慢动力学的结构起源。更重要的是,通过定标分析证明,从构型相关中提取的相关长度而不是动态相关长度是确定过冷金属液体急剧减速的关键。此处建立的构型相关性的关键作用为神秘玻璃过渡的结构起源提供了重要启示,并为发展对玻璃中玻璃过渡的普遍理论理解提供了重要的难题。

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