Abstract
Modeling electrocatalytic activation barriers is challenging due to the complex interplay between the reaction intermediates, solvation, and electrification within the electrochemical double layer. While efforts toward incorporating these complexities within DFT models are available, the sensitivities of reaction paths and activation barriers to modeling choices has received less attention. Here, we review the development of explicit and analytical grand canonical DFT models to incorporate electrochemical double layer (EDL) features when identifying elementary electrochemical reaction transition states. The analytical grand canonical DFT (aGC-DFT) framework is used to isolate modeling considerations for electrocatalytic barriers, specifically the local reaction path and EDL features. Reaction paths with large dipole moment changes have activation barriers that are highly sensitive to EDL properties, resulting in both uncertainties in predicting electrocatalytic rates and opportunities to tune kinetics using EDL design. We emphasize the need for future studies to investigate the structure and dynamic properties of the electrode–electrolyte interface, and discuss best practices for modeling electrocatalytic barriers using grand canonical DFT approaches.
| Original language | English (US) |
|---|---|
| Pages (from-to) | 20857-20866 |
| Number of pages | 10 |
| Journal | Journal of Physical Chemistry C |
| Volume | 129 |
| Issue number | 47 |
| DOIs | |
| State | Published - Nov 13 2025 |
All Science Journal Classification (ASJC) codes
- Electronic, Optical and Magnetic Materials
- General Energy
- Physical and Theoretical Chemistry
- Surfaces, Coatings and Films
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