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Heating-and pressure-induced transformations in amorphous and hexagonal ice: A computer simulation study using the TIP4P/2005 model

机译:无定形和六边形冰的加热和压力诱导的转化:使用Tip4P / 2005模型的计算机仿真研究

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摘要

We characterize the phase behavior of glassy water by performing extensive out-of-equilibrium molecular dynamics simulations using the TIP4P/2005 water model. Specifically, we study (i) the pressure-induced transformations between low-density (LDA) and high-density amorphous ice (HDA), (ii) the pressure-induced amorphization (PIA) of hexagonal ice (I-h), (iii) the heating-induced LDA-to-HDA transformation at high pressures, (iv) the heating-inducedHDA-to-LDA transformation at low and negative pressures, (v) the glass transition temperatures of LDA and HDA as a function of pressure, and (vi) the limit of stability of LDA upon isobaric heating and isothermal decompression (at negative pressures). These transformations are studied systematically, over a wide range of temperatures and pressures, allowing us to construct a P-T phase diagram for glassy TIP4P/2005 water. Our results are in qualitative agreement with experimental observations and with the P-T phase diagram obtained for glassy ST2 water that exhibits a liquid-liquid phase transition and critical point. We also discuss the mechanism for PIA of ice I-h and show that this is a two-step process where first, the hydrogen-bond network (HBN) is distorted and then the HBN abruptly collapses. Remarkably, the collapse of the HB in ice I-h occurs when the average molecular orientations order, a measure of the tetrahedrality of the HBN, is of the same order as in LDA, suggesting a common mechanism for the LDA-to-HDA and I-h-to-HDA transformations. Published by AIP Publishing.
机译:我们通过使用Tip4P / 2005水模型进行广泛的平衡分子动力学模拟来表征玻璃水的相行为。具体地,我们研究(i)低密度(LDA)和高密度无定形冰(HDA),(ii)的压力诱导的转化,(ii)六边形冰(Ih)的压力诱导的γ(Ih),(ih)在高压下的加热诱导的LDA-to-HDA转化(IV)在低且负压下加热诱导的诱导物,(v)LDA和HDA的玻璃化转变温度,作为压力的函数,和(vi)在摄入异室加热和等温度减压时LDA稳定性的极限(处于负压)。这些转化系统地进行了系统地研究,在各种温度和压力范围内,允许我们构建用于玻璃Tip4P / 2005水的P-T相图。我们的研究结果与实验观察结果进行了定性的一致性,并且对于玻璃ST2水而具有液体液相转变和临界点的P-T相图。我们还讨论了冰I-H PIA的机制,并表明这是一个两步过程,其中首先,氢键网络(HBN)变形,然后HBN突然坍塌。值得注意的是,冰Ih中Hb的崩溃发生在平均分子取向顺序,率为HBN的四面体的量度与LDA中的顺序相同,表明LDA-o-HDA和IH-的常见机制到HDA转换。通过AIP发布发布。

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