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Updated: Jan 10, 2026

Analyzing Melts and Fluids from Ab Initio Molecular Dynamics Simulations with the UMD Package
Published on: September 17, 2021
Ion transport in water film on silica and mica surfaces: Insights from microsecond molecular dynamics and logarithmic
Masashige Shiga1, Tetsuya Morishita2, Naoki Nishiyama1,3
1Geological Survey of Japan, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Ibaraki 305-8567, Japan.
Abstract:
Ion transport in water films on mineral surfaces is crucial for geophysical and engineering applications. However, probing these nanoscale phenomena is challenging for both experiments and conventional molecular dynamics (MD) simulations, which struggle to sample the rare ion transport events due to high computational cost. Consequently, the free energy barrier, which governs an ion's lateral entry into the film from the adjacent water-saturated region on the mineral surface, remained unevaluated. To address this, we employed microsecond MD and advanced free energy calculation methods (LogMFD/LogPD) to investigate ion energetics on silica and mica surfaces. Our results reveal a profound difference: a discernible free energy barrier of ∼3 kJ/mol for Cl- transport into the film on α-quartz, whereas the barrier is negligible on the muscovite mica. This difference is attributed to the local ionic environment; mica's dense Na+ counterion layer stabilizes incoming Cl-, while its absence on α-quartz creates an unstable state. This mechanism was further confirmed in infinitely dilute systems, where the transport barrier on both mineral surfaces is strongly modulated by the presence and location of the counterion. These findings provide molecular-level insights into ion distributions and diffusivities in heterogeneous geological formations and highlight the utility of advanced sampling to resolve the complex energy landscapes governing nanoscale transport.

