Kronberg Rasmus, Lappalainen Heikki, Laasonen Kari
Research Group of Computational Chemistry, Department of Chemistry and Materials Science, Aalto University, P.O. Box 16100, FI-00076 Aalto, Finland.
Phys Chem Chem Phys. 2020 May 21;22(19):10536-10549. doi: 10.1039/c9cp06474e. Epub 2020 Jan 30.
Density functional theory (DFT) based computational electrochemistry has the potential to serve as a tool with predictive power in the rational development and screening of electrocatalysts for renewable energy technologies. It is, however, of paramount importance that simulations are conducted rigorously at a level of theory that is sufficiently accurate in order to obtain physicochemically sensible results. Herein, we present a comparative study of the performance of the static climbing image nudged elastic band method (CI-NEB) vs. DFT based constrained molecular dynamics simulations with thermodynamic integration in estimating activation and reaction (free) energies of the Volmer-Heyrovský mechanism on a nitrogen doped carbon nanotube. Due to cancellation of errors within the CI-NEB calculations, static and dynamic activation barriers are observed to be surprisingly similar, while a substantial decrease in reaction energies is seen upon incorporation of solvent dynamics. This finding is attributed to two competing effects; (1) solvent reorganization that stabilizes the transition and, in particular, the product states with respect to the reactant state and (2) destabilizing entropic contributions due to solvent fluctuations. Our results highlight the importance of explicitly sampling the interfacial solvent dynamics when studying hydrogen evolution at solid-liquid interfaces.
基于密度泛函理论(DFT)的计算电化学有潜力成为一种在合理开发和筛选可再生能源技术的电催化剂方面具有预测能力的工具。然而,至关重要的是,要在理论水平上进行严格的模拟,且该理论水平要足够准确,以便获得物理化学上合理的结果。在此,我们展示了静态爬坡图像推挤弹性带方法(CI-NEB)与基于DFT的约束分子动力学模拟结合热力学积分在估算氮掺杂碳纳米管上Volmer-Heyrovský机理的活化能和反应(自由)能时性能的比较研究。由于CI-NEB计算中误差的抵消,观察到静态和动态活化能垒惊人地相似,而在纳入溶剂动力学后反应能大幅降低。这一发现归因于两种相互竞争的效应:(1)溶剂重组使过渡态特别是产物态相对于反应物态更稳定,以及(2)由于溶剂波动导致的熵贡献不稳定。我们的结果突出了在研究固液界面析氢时明确采样界面溶剂动力学的重要性。