Probing far-from-equilibrium dynamics of electrical double layers.

Li, Xiao-Yu; Cai, Yu-Chen; Meng, Zhao-Dong; Jia, Ze-Tong; Sun, Yu-Chen; Ye, Jin-Yu; Tian, Na; Zhou, Zhi-You et al. · Nature · 2026

basic_science · Level V

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Abstract

Electrified solid-liquid interfaces are central to energy and matter conversion in biological<sup>1</sup> and electrochemical systems<sup>2-4</sup>, in which intense local electric fields govern reaction kinetics<sup>5-9</sup>. Yet, under realistic electrocatalytic conditions involving rapid charge transfer and far-from-equilibrium dynamics, the molecular structure and evolution of the electrical double layer (EDL) remain poorly understood. Classical EDL models, derived under equilibrium and non-reactive conditions, cannot capture the interfacial processes emerging at reactive interfaces<sup>10-16</sup>. Here we develop an integrated experimental-computational framework to directly resolve EDL dynamics under the hydrogen evolution reaction (HER). Chemically stable nanostructured Pt film electrodes enable high-sensitivity, time-resolved surface-enhanced infrared absorption spectroscopy (SEIRAS) at increased overpotentials, whereas machine-learning molecular dynamics (MLMD) captures interfacial charge fluctuations and solvent dynamics over nanosecond timescales. This combined approach reveals a nonlinear, two-phase evolution of the inner layer that intensifies the local electric field. Time-resolved spectra further uncover irreversible restructuring of interfacial water during cyclic potential modulation. These findings show that ions and interfacial water respond asynchronously under the condition far from equilibrium, establishing a quantitative molecular framework for understanding electrostatic potential variations, interfacial electrostriction of ions<sup>17-19</sup>, electrolyte effects<sup>20-24</sup> and rational electrolyte design for energy conversion technologies.