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通讯:一种基于周期性密度泛函和增量波函数的组合方法,用于研究表面上⁴He纳米液滴的色散校正时间分辨动力学:⁴He/石墨烯

Communication: A combined periodic density functional and incremental wave-function-based approach for the dispersion-accounting time-resolved dynamics of ⁴He nanodroplets on surfaces: ⁴He/graphene.

作者信息

de Lara-Castells María Pilar, Stoll Hermann, Civalleri Bartolomeo, Causà Mauro, Voloshina Elena, Mitrushchenkov Alexander O, Pi Martí

机构信息

Instituto de Física Fundamental (C.S.I.C.), Serrano 123, E-28006 Madrid, Spain.

Institut für Theoretische Chemie, Universität Stuttgart, D-70550 Stuttgart, Germany.

出版信息

J Chem Phys. 2014 Oct 21;141(15):151102. doi: 10.1063/1.4898430.

DOI:10.1063/1.4898430
PMID:25338874
Abstract

In this work we propose a general strategy to calculate accurate He-surface interaction potentials. It extends the dispersionless density functional approach recently developed by Pernal et al. [Phys. Rev. Lett. 103, 263201 (2009)] to adsorbate-surface interactions by including periodic boundary conditions. We also introduce a scheme to parametrize the dispersion interaction by calculating two- and three-body dispersion terms at coupled cluster singles and doubles and perturbative triples (CCSD(T)) level via the method of increments [H. Stoll, J. Chem. Phys. 97, 8449 (1992)]. The performance of the composite approach is tested on (4)He/graphene by determining the energies of the low-lying selective adsorption states, finding an excellent agreement with the best available theoretical data. Second, the capability of the approach to describe dispersionless correlation effects realistically is used to extract dispersion effects in time-dependent density functional simulations on the collision of (4)He droplets with a single graphene sheet. It is found that dispersion effects play a key role in the fast spreading of the (4)He nanodroplet, the evaporation-like process of helium atoms, and the formation of solid-like helium structures. These characteristics are expected to be quite general and highly relevant to explain experimental measurements with the newly developed helium droplet mediated deposition technique.

摘要

在这项工作中,我们提出了一种计算精确的氦 - 表面相互作用势的通用策略。它通过纳入周期性边界条件,将佩纳尔等人最近开发的无弥散密度泛函方法[《物理评论快报》103, 263201 (2009)]扩展到吸附质 - 表面相互作用。我们还引入了一种方案,通过增量法[H. 斯托尔,《化学物理杂志》97, 8449 (1992)]在耦合簇单双激发和微扰三激发(CCSD(T))水平计算两体和三体色散项,来对色散相互作用进行参数化。通过确定低能选择性吸附态的能量,在(4)He/石墨烯体系上测试了这种复合方法的性能,发现与现有的最佳理论数据高度吻合。其次,利用该方法逼真描述无弥散相关效应的能力,在(4)He液滴与单个石墨烯片碰撞的含时密度泛函模拟中提取色散效应。结果发现,色散效应在(4)He纳米液滴的快速铺展、氦原子的类似蒸发过程以及类固态氦结构的形成中起着关键作用。这些特性预计具有普遍性,对于解释使用新开发的氦液滴介导沉积技术进行的实验测量具有高度相关性。

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