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Molecular dynamics and stochastic simulations of surface diffusion.

机译:表面扩散的分子动力学和随机模拟。

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摘要

Despite numerous advances in experimental methodologies capable of addressing the various phenomenon occurring on metal surfaces, atomic scale resolution of the microscopic dynamics remains elusive for most systems. Computational models of the processes may serve as an alternative tool to fill this void. To this end, parallel molecular dynamics simulations of self-diffusion on metal surfaces have been developed and employed to address microscopic details of the system. However these simulations are not without their limitations and prove to be computationally impractical for a variety of chemically relevant systems, particularly for diffusive events occurring in the low temperature regime. To circumvent this difficulty, a corresponding coarse-grained representation of the surface is also developed resulting in a reduction of the required computational effort by several orders of magnitude, and this description becomes all the more advantageous with increasing system size and complexity. This representation provides a convenient framework to address fundamental aspects of diffusion in nonequilibrium environments and an interesting mechanism for directing diffusive motion along the surface is explored. In the ensuing discussion, additional topics including transition state theory in noisy systems and the construction of a checking function for protein structure validation are outlined. For decades the former has served as a cornerstone for estimates of chemical reaction rates. However, in complex environments transition state theory most always provides only an upper bound for the true rate. An alternative approach is described that may alleviate some of the difficulties associated with this problem. Finally, one of the grand challenges facing the computational sciences is to develop methods capable of reconstructing protein structure based solely on readily-available sequence information. Herein a checking function is developed that may prove useful for addressing whether a particular proposed structure is a viable possibility.
机译:尽管在能够解决金属表面上发生的各种现象的实验方法上取得了许多进步,但对于大多数系统而言,微观动力学的原子尺度分辨率仍然难以捉摸。过程的计算模型可以作为填补这一空白的替代工具。为此,已经开发了在金属表面上自扩散的平行分子动力学模拟,并将其用于解决系统的微观细节。然而,这些模拟并非没有局限性,并且证明对于各种化学相关系统,特别是对于低温条件下发生的扩散事件,在计算上是不切实际的。为了避免这种困难,还开发了相应的表面粗粒度表示,从而将所需的计算工作量减少了几个数量级,并且随着系统尺寸和复杂性的增加,这种描述变得更加有利。此表示提供了一个方便的框架来解决非平衡环境中扩散的基本方面,并探索了一种有趣的机制来指导沿表面的扩散运动。在随后的讨论中,概述了其他主题,包括嘈杂系统中的过渡态理论和蛋白质结构验证的检查功能的构建。几十年来,前者一直是估计化学反应速率的基石。但是,在复杂的环境中,过渡状态理论通常总是仅提供真实速率的上限。描述了一种替代方法,可以减轻与此问题相关的一些困难。最后,计算科学面临的重大挑战之一是开发仅基于易于获得的序列信息就能重建蛋白质结构的方法。在此开发了一种检查功能,该检查功能可以证明对解决特定的提议结构是否可行是有用的。

著录项

  • 作者

    Moix, Jeremy.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
  • 关键词

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