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May 7, 2026The Journal of Physical Chemistry C0 citations

Effect of Solvent on the Local Structure, Dynamics, and Vibrational Density of States in Sn-BEA Zeolite

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WWWoodrow N. WilsonJLJohn LaneWHWilliam Humphreys

Key Points

  • This research aims to understand how solvents affect the local structure and dynamics around Lewis acid sites in Sn-BEA zeolite.
  • Used molecular dynamics simulations to study two solvents (methanol and water) around Sn-BEA zeolite active sites.
  • Employed machine-learned interatomic potentials trained on ab initio molecular dynamics trajectories.
  • Analyzed local order in solvation shells and diffusion coefficients in relation to solvent populations.
  • Introducing active sites enhances local order in the solvation shells compared to pure silica.
  • In methanol, both closed and open active sites are singly coordinated, while water coordinates more than two molecules to the open site.
  • Water dissociates, forming additional Sn−OH and silanol groups, unlike methanol.
  • Diffusion coefficients are dependent on solvent type and population within the pore.

Abstract

Lewis acid zeolites are attractive catalysts for epoxidation and biomass valorization, as they are highly active and selective in the liquid phase and can operate at or near ambient conditions. While a rich experimental literature exists on liquid-phase Lewis acid zeolite catalysis, our understanding of the molecular organization and solvent dynamics in the vicinity of Lewis acid sites with differing metal site speciation remains limited. In this work, we investigate the molecular coordination and diffusion of two common solvents (methanol and water) around the closed and open Sn-BEA zeolite active sites using molecular dynamics simulations with a machine-learned interatomic potential trained on ab initio molecular dynamics trajectories. Molecular dynamics simulations reveal that introducing active sites significantly enhances local order in the first and second solvation shells compared to the pure silica case. For methanol, both closed and open active sites are singly coordinated, while more than two water molecules coordinate the open site. In contrast to methanol, we observed that water molecules dissociate, leading to the formation of additional Sn−OH and silanol groups away from the active site. The diffusion coefficients of water and methanol are functions of the solvent population in the pore. Our work provides insights into how active site speciation in Lewis acid zeolites affects solvent coordination, diffusion, and vibrational signature. This information is foundational for catalyst design and optimization of liquid-phase catalytic processes in zeolites. It also demonstrates the suitability of machine-learned interatomic potentials for modeling reactive systems, enabling sufficiently long trajectories for appropriate statistical averaging.

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Cite This Study

Wilson et al. (2026) studied this question.

synapsesocial.com/papers/69fbefa3164b5133a91a38f6https://doi.org/10.1021/acs.jpcc.5c07956
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