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在有限温度下,通过核量子效应增强共价和非共价分子相互作用的动力学。

Dynamical strengthening of covalent and non-covalent molecular interactions by nuclear quantum effects at finite temperature.

机构信息

Department of Physics and Materials Science, University of Luxembourg, L-1511, Luxembourg City, Luxembourg.

Machine Learning Group, Technische Universität Berlin, 10587, Berlin, Germany.

出版信息

Nat Commun. 2021 Jan 19;12(1):442. doi: 10.1038/s41467-020-20212-1.

Abstract

Nuclear quantum effects (NQE) tend to generate delocalized molecular dynamics due to the inclusion of the zero point energy and its coupling with the anharmonicities in interatomic interactions. Here, we present evidence that NQE often enhance electronic interactions and, in turn, can result in dynamical molecular stabilization at finite temperature. The underlying physical mechanism promoted by NQE depends on the particular interaction under consideration. First, the effective reduction of interatomic distances between functional groups within a molecule can enhance the n → π interaction by increasing the overlap between molecular orbitals or by strengthening electrostatic interactions between neighboring charge densities. Second, NQE can localize methyl rotors by temporarily changing molecular bond orders and leading to the emergence of localized transient rotor states. Third, for noncovalent van der Waals interactions the strengthening comes from the increase of the polarizability given the expanded average interatomic distances induced by NQE. The implications of these boosted interactions include counterintuitive hydroxyl-hydroxyl bonding, hindered methyl rotor dynamics, and molecular stiffening which generates smoother free-energy surfaces. Our findings yield new insights into the versatile role of nuclear quantum fluctuations in molecules and materials.

摘要

核量子效应(NQE)由于包含零点能及其与原子间相互作用的非谐性的耦合,往往会产生离域的分子动力学。在这里,我们提供的证据表明,NQE 通常会增强电子相互作用,从而在有限温度下导致动态分子稳定化。由 NQE 促进的潜在物理机制取决于所考虑的特定相互作用。首先,分子内官能团之间的原子间距离的有效减小可以通过增加分子轨道的重叠或增强相邻电荷密度之间的静电相互作用来增强 n→π 相互作用。其次,NQE 可以通过暂时改变分子键序并导致局部瞬态转子状态的出现来局部化甲基转子。第三,对于非共价范德华相互作用,由于 NQE 引起的平均原子间距离的扩展,极化率的增加导致相互作用的增强。这些增强相互作用的影响包括羟基氢键的反直觉结合、受阻的甲基转子动力学以及产生更平滑的自由能表面的分子变硬。我们的发现为核量子涨落在分子和材料中的多功能作用提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a0a5/7815839/14aad6169b8e/41467_2020_20212_Fig1_HTML.jpg

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