论力学分子破裂过程中力、温度和电场之间的相互作用

IF 2.3 3区 化学 Q3 CHEMISTRY, PHYSICAL
Chemphyschem Pub Date : 2024-11-18 Epub Date: 2024-09-30 DOI:10.1002/cphc.202400648
Tarek Scheele, Tim Neudecker
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引用次数: 0

摘要

定向外电场(OEEFs)的使用有望成为化学催化的另一种方法。在机械化学反应中,利用机械力选择性地断裂化学键,通过将特定化学键与弱化化学键的电场对齐来瞄准该化学键的能力可能是有益的。以往的计算研究侧重于对 OEEFs 中分子的静态描述,忽略了测试热振荡对分子稳定性的影响。在此,我们基于密度泛函理论(DFT)进行了原子分子动力学(AIMD)模拟,研究了模型 mechanophore 在热效应和电场效应同时影响下的行为。我们的研究表明,在分子没有施加机械拉伸力或施加了机械拉伸力的情况下,强电场引起的键长变化基本上与温度无关。热振荡的振幅随着电场强度和温度的增加而增加,但在低温条件下,施加机械力会导致振幅的额外增加。我们的研究表明,施加机械力和 OEEFs 的方法可以安全地结合起来,并包含在低温和高温的 AIMD 模拟中,使研究人员能够在现实应用场景中对机械化学反应进行计算研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the Interplay Between Force, Temperature, and Electric Fields in the Rupture Process of Mechanophores.

The use of oriented external electric fields (OEEFs) shows promise as an alternative approach to chemical catalysis. The ability to target a specific bond by aligning it with a bond-weakening electric field may be beneficial in mechanochemical reactions, which use mechanical force to selectively rupture bonds. Previous computational studies have focused on a static description of molecules in OEEFs, neglecting to test the influence of thermal oscillations on molecular stability. Here, we performed ab initio molecular dynamics (AIMD) simulations based on density functional theory (DFT) to investigate the behaviour of a model mechanophore under the simultaneous influence of thermal and electric field effects. We show that the change in bond length caused by a strong electric field is largely independent of the temperature, both without and with mechanical stretching forces applied to the molecule. The amplitude of thermal oscillations increases with increasing field strength and temperature, but at low temperatures, the application of mechanical force leads to an additional increase in amplitude. Our research shows that methods for applying mechanical force and OEEFs can be safely combined and included in an AIMD simulation at both low and high temperatures, allowing researchers to computationally investigate mechanochemical reactions in realistic application scenarios.

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来源期刊
Chemphyschem
Chemphyschem 化学-物理:原子、分子和化学物理
CiteScore
4.60
自引率
3.40%
发文量
425
审稿时长
1.1 months
期刊介绍: ChemPhysChem is one of the leading chemistry/physics interdisciplinary journals (ISI Impact Factor 2018: 3.077) for physical chemistry and chemical physics. It is published on behalf of Chemistry Europe, an association of 16 European chemical societies. ChemPhysChem is an international source for important primary and critical secondary information across the whole field of physical chemistry and chemical physics. It integrates this wide and flourishing field ranging from Solid State and Soft-Matter Research, Electro- and Photochemistry, Femtochemistry and Nanotechnology, Complex Systems, Single-Molecule Research, Clusters and Colloids, Catalysis and Surface Science, Biophysics and Physical Biochemistry, Atmospheric and Environmental Chemistry, and many more topics. ChemPhysChem is peer-reviewed.
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