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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Energy Decomposition Analysis for Metal Surface-Adsorbate Interactions by Block Localized Wave Functions
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Energy Decomposition Analysis for Metal Surface-Adsorbate Interactions by Block Localized Wave Functions

机译:阻塞局部波函数的金属表面吸附相互作用的能量分解分析

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The energy decomposition analysis based on block localized wave functions (BLW-EDA) allows one to gain physical insight into the nature of chemical bonding, decomposing the interaction energy in (1) a "frozen" term, accounting for the attraction due to electrostatic and dispersion interactions, modulated by Pauli repulsion, (2) the variationally assessed polarization energy, and (3) the charge transfer. This method has so far been applied to gas- and condensed-phase molecular systems. However, its standard version is not compatible with fractionally occupied orbitals (i.e., electronic smearing) and, as a consequence, cannot be applied to metallic surfaces. In this work, we propose a simple and practical extension of BLW-EDA to fractionally occupied orbitals, termed Ensemble BLW-EDA. As illustrative examples, we have applied the developed method to analyze the nature of the interaction of various adsorbates on Pt(111), ranging from physisorbed water to strongly chemisorbed ethylene. Our results show that polarization and charge transfer both contribute significantly at the adsorption minimum for all studied systems. The energy decomposition analysis provides details with respect to competing adsorption sites (e.g., CO on atop vs hollow sites) and elucidates the respective importance of polarization and charge transfer for the increased adsorption energy of H2S compared to H2O. Our development will enable a deeper understanding of the impact of charge transfer on catalytic processes in general.
机译:基于块局部波函数(BLW-EDA)的能量分解分析允许人们对化学键合的性质进行物理洞察,以(1)“冷冻”术语中的相互作用能量分解,占静电和静电引起的吸引力分散相互作用,由Pauli排斥调节,(2)变分评估的偏振能,(3)电荷转移。到目前为止,该方法已经应用于气体和冷凝相分子系统。然而,其标准版本与分馏占用的轨道(即,电子涂抹)不兼容,因此不能应用于金属表面。在这项工作中,我们提出了一个简单实际的扩展到Flw-EDA以分馏占用轨道,被称为Blw-EDA。作为说明性实例,我们已经应用了开发方法,以分析各种吸附物对Pt(111)对Pt(111)的相互作用的性质,从物质吸收水到强化学吸附的乙烯。我们的研究结果表明,各种研究的吸附最小值的极化和电荷转移均有贡献。能量分解分析提供关于竞争吸附位点的细节(例如,VS中空部位的CO),并阐明与H2O相比,H2S的增加的吸附能量的极化和电荷转移的相应重要性。我们的发展将使电荷转移对催化过程的影响更深入了解。

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