首页> 外文期刊>The European physical journal, E. Soft matter >Dynamic and thermodynamic crossover scenarios in the Kob-Andersen mixture: Insights from multi-CPU and multi-GPU simulations
【24h】

Dynamic and thermodynamic crossover scenarios in the Kob-Andersen mixture: Insights from multi-CPU and multi-GPU simulations

机译:Kob-Andersen混合物中的动态和热力学交叉方案:多CPU和多GPU模拟的见解

获取原文
获取原文并翻译 | 示例
           

摘要

The physical behavior of glass-forming liquids presents complex features of both dynamic and thermodynamic nature. Some studies indicate the presence of thermodynamic anomalies and of crossovers in the dynamic properties, but their origin and degree of universality is difficult to assess. Moreover, conventional simulations are barely able to cover the range of temperatures at which these crossovers usually occur. To address these issues, we simulate the Kob-Andersen Lennard-Jones mixture using efficient protocols based on multi-CPU and multi-GPU parallel tempering. Our setup enables us to probe the thermodynamics and dynamics of the liquid at equilibrium well below the critical temperature of the mode-coupling theory, T-MCT = 0.435. We find that below T = 0.4 the analysis is hampered by partial crystallization of the metastable liquid, which nucleates extended regions populated by large particles arranged in an fcc structure. By filtering out crystalline samples, we reveal that the specific heat grows in a regular manner down to T = 0.38. Possible thermodynamic anomalies suggested by previous studies can thus occur only in a region of the phase diagram where the system is highly metastable. Using the equilibrium configurations obtained from the parallel tempering simulations, we perform molecular dynamics and Monte Carlo simulations to probe the equilibrium dynamics down to T = 0.4. A temperature-derivative analysis of the relaxation time and diffusion data allows us to assess different dynamic scenarios around T-MCT. Hints of a dynamic crossover come from analysis of the four-point dynamic susceptibility. Finally, we discuss possible future numerical strategies to clarify the nature of crossover phenomena in glass-forming liquids.
机译:玻璃形成液体的物理行为呈现动态和热力学性质的复杂特征。一些研究表明热力学异常和动态性质的交叉的存在,但它们的起源和普遍性程度难以评估。此外,常规模拟几乎不能覆盖通常发生这些交叉渗透的温度范围。为了解决这些问题,我们使用基于多CPU和多GPU并联回火的有效协议模拟Kob-Andersen Lennard-Jones混合。我们的设置使我们能够在均衡低于模式耦合理论的临界温度下探测液体的热力学和动力学,T-MCT = 0.435。我们发现以下T = 0.4通过亚稳液体的部分结晶,分析是阻碍的,​​该含量是由布置在FCC结构中布置的大颗粒填充的延伸区域。通过过滤掉结晶样品,我们揭示了比热量以规则的方式变为T = 0.38。因此,以前研究建议的可能的热力学异常仅在系统是高稳定的相位图的区域中发生。使用从并行回火模拟中获得的平衡配置,我们执行分子动力学和蒙特卡罗模拟,以探测降低到T = 0.4的平衡动力学。放松时间和扩散数据的温度衍生物分析允许我们评估T-MCT周围的不同动态场景。动态交叉的提示来自分析四点动态易感性。最后,我们讨论了未来的数值策略,以阐明玻璃形成液体中的交叉现象的性质。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号