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深度过冷的斯廷林格-韦伯硅中的液-液相转变

Liquid-liquid phase transition in deeply supercooled Stillinger-Weber silicon.

作者信息

Goswami Yagyik, Sastry Srikanth

机构信息

Theoretical Sciences Unit and School of Advanced Materials, Jawaharlal Nehru Centre for Advanced Scientific Research, Rachenahalli Lake Road, Bengaluru 560064, India.

出版信息

PNAS Nexus. 2022 Sep 23;1(4):pgac204. doi: 10.1093/pnasnexus/pgac204. eCollection 2022 Sep.

Abstract

The existence of a phase transition between two distinct liquid phases in single-component network-forming liquids (e.g. water, silica, silicon) has elicited considerable scientific interest. The challenge, both for experiments and simulations, is that the liquid-liquid phase transition (LLPT) occurs under deeply supercooled conditions, where crystallization occurs very rapidly. Thus, early evidence from numerical equation of state studies was challenged with the argument that slow spontaneous crystallization had been misinterpreted as evidence of a second liquid state. Rigorous free-energy calculations have subsequently confirmed the existence of a LLPT in some models of water, and exciting new experimental evidence has since supported these computational results. Similar results have so far not been found for silicon. Here, we present results from free-energy calculations performed for silicon modeled with the classical, empirical Stillinger-Weber-potential. Through a careful study employing state-of-the-art constrained simulation protocols and numerous checks for thermodynamic consistency, we find that there are two distinct metastable liquid states and a phase transition. Our results resolve a long-standing debate concerning the existence of a liquid-liquid transition in supercooled liquid silicon and address key questions regarding the nature of the phase transition and the associated critical point.

摘要

在单组分网络形成液体(如水、二氧化硅、硅)中,两种不同液相之间存在相变,这引发了相当大的科学兴趣。对于实验和模拟而言,挑战在于液 - 液相变(LLPT)发生在深度过冷条件下,此时结晶会非常迅速地发生。因此,状态方程数值研究的早期证据受到了质疑,理由是缓慢的自发结晶被错误地解释为第二种液态的证据。随后,严格的自由能计算证实了在一些水的模型中存在LLPT,并且令人兴奋的新实验证据也支持了这些计算结果。到目前为止,在硅中尚未发现类似结果。在此,我们展示了对用经典经验性斯廷林格 - 韦伯势建模的硅进行自由能计算的结果。通过采用最先进的约束模拟协议进行仔细研究,并对热力学一致性进行多次检查,我们发现存在两种不同的亚稳态液相以及一个相变。我们的结果解决了关于过冷液态硅中液 - 液转变存在的长期争论,并解决了有关相变性质和相关临界点的关键问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f948/9802493/30c6a46836db/pgac204fig1.jpg

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