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Updated: Jul 13, 2026

Probing the Structure and Dynamics of Interfacial Water with Scanning Tunneling Microscopy and Spectroscopy
Published on: May 27, 2018
Unraveling Surface Hydroxylation Equilibrium and Proton Dynamics at the Water and Monoclinic ZrO2 Interface from
Tori Oishi1, Tatsushi Ikeda1, Akira Nakayama1
1Department of Chemical System Engineering, The University of Tokyo, Tokyo 113-8656, Japan.
Abstract:
Despite their importance in catalysis and electrochemical energy conversion, the equilibrium structure and proton dynamics of water/metal-oxide interfaces remain difficult to access at the molecular level. Herein, we investigate the water/monoclinic ZrO2(1̅11) interface using reactive molecular dynamics simulations enabled by a neural network potential trained on density functional theory calculations. Nanosecond-scale simulations with extended surface models reveal a strongly site-dependent surface hydroxylation equilibrium: 2-fold-coordinated oxygen atoms remain persistently protonated, whereas a fraction of 3-fold-coordinated sites undergo transient hydroxylation with an average lifetime of ∼200 ps. Proton transfer events occur frequently within the interfacial adlayer, and hydroxide ion migration via the Grotthuss-like mechanism is analyzed, yielding a diffusion coefficient of 19.3 Å2 ns-1, indicating active ion transport on the surface. This work demonstrates the capability of machine-learning-potential-based molecular dynamics to resolve surface hydroxylation equilibrium and ion-transport phenomena at complex water/metal-oxide interfaces.
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