论文标题
液体硅中共价键动力学的分子模拟
Molecular Simulation of Covalent Bond Dynamics in Liquid Silicon
论文作者
论文摘要
许多原子液体可以形成瞬态共价键,让人联想到相应的固态中的键。这些定向相互作用决定了液态的许多重要特性,因此需要对这些复杂系统中的键合进行定量的原子级理解。一个典型的例子是液体硅,其中瞬时共价键导致局部四面体顺序,因此对液态态热力学和动力学产生了非平凡的影响。为了进一步理解液体硅和类似液体中的共价键,我们提出了一种基于基础模拟的方法,用于量化冷凝相中共价键的结构和动力学。通过检查硅核和最大局部浮力功能中心之间的结构相关性,我们开发了液体SI中共价键的几何标准。我们使用它来监测液态下瞬时共价键的动力学,并估计共价键寿命。我们将共价键动力学与液体SI和类似液体中的其他过程进行比较,并建议实验以测量共价键寿命。
Many atomic liquids can form transient covalent bonds reminiscent of those in the corresponding solid states. These directional interactions dictate many important properties of the liquid state, necessitating a quantitative, atomic-scale understanding of bonding in these complex systems. A prototypical example is liquid silicon, wherein transient covalent bonds give rise to local tetrahedral order and consequent non-trivial effects on liquid state thermodynamics and dynamics. To further understand covalent bonding in liquid silicon, and similar liquids, we present an ab initio simulation-based approach for quantifying the structure and dynamics of covalent bonds in condensed phases. Through the examination of structural correlations among silicon nuclei and maximally localized Wannier function centers, we develop a geometric criterion for covalent bonds in liquid Si. We use this to monitor the dynamics of transient covalent bonding in the liquid state and estimate a covalent bond lifetime. We compare covalent bond dynamics to other processes in liquid Si and similar liquids and suggest experiments to measure the covalent bond lifetime.