Low Confinement and Strong Pore Hydrophilicity Drive Intrinsic Water Permeability Inside Cage-Like Metal–Organic Frameworks

Abstract

Metal–organic frameworks (MOFs) with cage-like narrow openings and large internal cavities have shown potential for addressing outstanding challenges such as water harvesting and purification. However, a fundamental understanding of water structure and dynamics within these MOFs is essential to achieving high water flux. Here, we take a computational approach to determine the effects of pore confinement and hydrophilicity on water density, hydrogen bonding, diffusivity, and permeability in 78 cage-like MOFs that are predicted by literature-trained machine learning models to be stable in humid/wet conditions, including under water submersion. Across this set, we observe significant variations in water density, hydrogen-bond network, dielectric environment, and diffusion driven by confinement and hydrophilicity of the MOFs. We show that confinement exerts a strong influence on water structure, diffusion, and intrinsic permeability with hydrophilicity exerting a secondary influence. Finally, we establish design principles to achieve exceptional water permeability within cage-like MOFs without compromising the ionic selectivity.

Publication
Nano Lett., 26, 10522–10531 (2026)
Akash K. Ball
Akash K. Ball
Graduate Student
Heather J. Kulik
Heather J. Kulik
Professor of Chemical Engineering and Chemistry