多尺度建模
分子动力学
密度泛函理论
化学物理
偶极子
电化学
化学
工作(物理)
电场
吸附
材料科学
催化作用
微扰理论(量子力学)
摄动(天文学)
计算化学
自由能微扰
电偶极矩
分子物理学
双层(生物学)
部分电荷
QM/毫米
热力学
氧化还原
多相催化
作者
Ke Ye,Yulan Han,Fan Wu,Min Hu,Zhiyao Duan,P. Hu,Guozhen Zhang,Mårten S. G. Ahlquist
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2025-12-19
卷期号:16 (1): 519-527
被引量:2
标识
DOI:10.1021/acscatal.5c06835
摘要
Understanding the electrocatalyst–electrolyte interface, including electric double layer (EDL) effects, is critical for CO2 electroreduction (CO2RR). However, modeling the EDL’s full complexity, spanning large spatiotemporal scales (∼10 nm, >100 ps) remains a challenge for conventional simulations. Here, we integrate the grand canonical density functional theory (GC-DFT) with large-scale classical molecular dynamics and free energy perturbation (FEP) methods (30,000+ atoms, ns time scale) to model CO2 reduction to CO on a Ni–N–C/G catalyst under an applied potential of −0.60 VRHE in a 0.5 M KHCO3 electrolyte. The simulations indicate that under these specific conditions, the EDL substantially promotes CO2 adsorption (−0.64 eV) and facilitates the two proton-transfer steps while slightly inhibiting CO desorption. Moreover, the FEP simulation results reveal that the interfacial electric field (EF), rather than cation coordination, is primarily responsible for modulating these reaction energetics. Furthermore, a linear correlation is found between the perpendicular dipole moment change (Δμz) of adsorbed intermediates and the EF-induced free energy shift (ΔGFEP), suggesting a useful descriptor for assessing EDL influences. This work demonstrates the value of a multiscale framework for probing interfacial electrochemical phenomena.
科研通智能强力驱动
Strongly Powered by AbleSci AI