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Search for a liquid-liquid critical point in models of silica

机译:在二氧化硅模型中寻找液-液临界点

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Previous research has indicated the possible existence of a liquid-liquid critical point (LLCP) in models of silica at high pressure. To clarify this interesting question we run extended molecular dynamics simulations of two different silica models (WAC and BKS) and perform a detailed analysis of the liquid at temperatures much lower than those previously simulated. We find no LLCP in either model within the accessible temperature range, although it is closely approached in the case of the WAC potential near 4000 K and 5 GPa. Comparing our results with those obtained for other tetrahedral liquids, and relating the average Si–O–Si bond angle and liquid density at the model glass temperature to those of the ice-like β-cristobalite structure, we conclude that the absence of a critical point can be attributed to insufficient "stiffness" in the bond angle. We hypothesize that a modification of the potential to mildly favor larger average bond angles will generate a LLCP in a temperature range that is accessible to simulation. The tendency to crystallize in these models is extremely weak in the pressure range studied, although this tendency will undoubtedly increase with increasing stiffness.
机译:先前的研究表明,在高压硅胶模型中可能存在液-液临界点(LLCP)。为了澄清这个有趣的问题,我们对两种不同的二氧化硅模型(WAC和BKS)进行了扩展的分子动力学模拟,并在比以前模拟的温度低得多的温度下对液体进行了详细的分析。尽管在接近4000 K和5 GPa的WAC电位的情况下,LLC接近,但在可访问的温度范围内,两种模型都没有LLCP。将我们的结果与其他四面体液体的结果进行比较,并将模型玻璃温度下的平均Si–O–Si键角和液体密度与冰状β-方石英结构的结果相关联,我们得出结论,没有临界温度该点可归因于粘结角的“刚度”不足。我们假设对电位的修改适度有利于较大的平均键角,将在可模拟的温度范围内产生LLCP。在这些模型中结晶的趋势在所研究的压力范围内极弱,尽管这种趋势无疑会随着刚度的增加而增加。

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