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用密度泛函理论模拟强电场中有机分子的蒸发与碎片化

Evaporation and Fragmentation of Organic Molecules in Strong Electric Fields Simulated with DFT.

作者信息

Dietrich Carolin A, Schuldt Robin, Born Daniel, Solodenko Helena, Schmitz Guido, Kästner Johannes

机构信息

Institute for Theoretical Chemistry, University of Stuttgart, Pfaffenwaldring 55, 70569 Stuttgart, Germany.

Institute for Materials Science, University of Stuttgart, Heisenbergstr. 3, 70569 Stuttgart, Germany.

出版信息

J Phys Chem A. 2020 Oct 15;124(41):8633-8642. doi: 10.1021/acs.jpca.0c06887. Epub 2020 Oct 1.

Abstract

Atom probe tomography allows us to measure the three-dimensional composition of materials with up to atomic resolution by evaporating the material using high electric fields. Initially developed for metals, it is increasingly used for covalently bound structures. To aid the interpretation of the obtained fragmentation pattern, we modeled the fragmentation and desorption of self-assembled monolayers of thiolate molecules on a gold surface in strong electrostatic fields using density functional theory. We used a cluster model and a periodic model of amino-undecanethiolate, NH(CH)S, and fluoro-decanethiolate, CF(CF)(CH)S. In the former molecule, the fragment CHNH was found to evaporate at fields of 5.4-7.7 V/nm. It was followed by different hydrocarbon fragments. Fluoro-decanethiolate evaporates CF at fields of 5.7-6.7 V/nm in the cluster model and at 15.4-23.1 V/nm in the periodic model, followed by CF and CF. Detailed analysis of the electronic structure during the evaporation process revealed a stepwise accumulation of the charge in the head groups exposed to the strongest fields, followed by dissociation of covalent bonds. These observations will facilitate the analysis of atom probe experiments of covalently bound structures.

摘要

原子探针断层扫描技术使我们能够通过利用高电场蒸发材料,以高达原子分辨率测量材料的三维组成。该技术最初是为金属开发的,现在越来越多地用于共价键合结构。为了帮助解释所获得的碎片化模式,我们使用密度泛函理论对金表面上硫醇盐分子自组装单分子层在强静电场中的碎片化和解吸进行了建模。我们使用了氨基十一烷硫醇盐(NH(CH)S)和氟代癸烷硫醇盐(CF(CF)(CH)S)的簇模型和周期性模型。在前一种分子中,发现片段CHNH在5.4 - 7.7 V/nm的电场下蒸发。随后是不同的烃类片段。在簇模型中,氟代癸烷硫醇盐在5.7 - 6.7 V/nm的电场下蒸发CF,在周期性模型中在15.4 - 23.1 V/nm的电场下蒸发CF,随后是CF和CF。对蒸发过程中电子结构的详细分析表明,在暴露于最强电场的头基中电荷逐步积累,随后共价键解离。这些观察结果将有助于分析共价键合结构的原子探针实验。

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