首页> 外文会议>Advances in Computational Methods in Sciences and Engineering 2005 vol.4A; Lecture Series on Computer and Computational Sciences; vol.4A >First-Principles Molecular and Reaction Dynamics Simulations: Application to the Structure, Thermodynamics and Photochemistry of Ionic Aqueous Clusters
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First-Principles Molecular and Reaction Dynamics Simulations: Application to the Structure, Thermodynamics and Photochemistry of Ionic Aqueous Clusters

机译:第一性分子和反应动力学模拟:在离子水团簇的结构,热力学和光化学中的应用

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Realistic computer simulations of the structure and thermodynamics of complex chemical systems governed by subtle intermolecular interactions, as well as the real time-evolution of such systems in their electronically excited states, resulting for example from photoexcitation, represent many challenges for modern computational chemistry. In this contribution, we discuss the application of first-principles molecular dynamics simulations to the ground-state structure and thermodynamics and the excited-state dynamics of iodide-water clusters. One of the fascinating features of these clusters lies in the possibility of photochemical transfer of an electron from the ion to the solvent, giving rise to so-called charge-transfer-to-solvent excited states, which arises from surface solvation structures in small to medium-sized clusters and eventually lead to precursor states of the solvated electron. We will thus discuss a rigorous investigation of surface vs. interior solvation thermodynamics for these species, we will show how reliable calculations of energetics, vertical excitation energies and ionization potentials can be combined with experiment to probe cluster solvation structures, and we will highlight the importance of solvation dynamics in the relaxation of photoexcited ionic clusters, in connection with recent femtosecond photoelectron spectroscopy experimental results.
机译:由细微的分子间相互作用控制的复杂化学系统的结构和热力学的逼真计算机模拟,以及此类系统在电子激发态下的实时演化(例如由光激发引起的),对现代计算化学提出了许多挑战。在这一贡献中,我们讨论了第一性原理分子动力学模拟在碘化物-水团簇的基态结构和热力学以及激发态动力学中的应用。这些簇的引人入胜的特征之一是电子从离子到溶剂的光化学转移的可能性,从而产生所谓的“电荷转移至溶剂”的激发态,这是由于表面溶剂化结构从小到大。中等大小的团簇,最终导致溶剂化电子的前体态。因此,我们将讨论对这些物种的表面与内部溶剂化热力学的严格研究,我们将展示如何将高能,垂直激发能和电离电势的可靠计算与实验相结合,以探索团簇溶剂化结构,并且我们将着重说明其重要性。飞秒光电子能谱实验结果与溶剂化动力学在光激发离子簇的弛豫中的作用有关。

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