Deformation dynamics of nanopores upon water imbibition

Author:

Sanchez Juan1,Dammann Lars123ORCID,Gallardo Laura14ORCID,Li Zhuoqing12ORCID,Fröba Michael5,Meißner Robert H.36ORCID,Stone Howard A.7ORCID,Huber Patrick12ORCID

Affiliation:

1. Institute for Materials and X-ray Physics, Hamburg University of Technology, Hamburg 21073, Germany

2. Center for X-ray and Nano Science, Deutsches Elektronen-Synchrotron, Hamburg 22607, Germany

3. Institute of soft Matter Modeling, Hamburg University of Technology, Hamburg 21073, Germany

4. Centre for the Study of Manuscript Cultures, Hamburg University, Hamburg 20354, Germany

5. Institute of Inorganic and Applied Chemistry, University of Hamburg, Hamburg 20146, Germany

6. Institute of Surface Science, Helmholtz-Zentrum Hereon, Geesthacht 21502, Germany

7. Department of Mechanical and Aerospace Engineering, Princeton University, Princeton, NJ 08540

Abstract

Capillarity-driven transport in nanoporous solids is widespread in nature and crucial for modern liquid-infused engineering materials. During imbibition, curved menisci driven by high negative Laplace pressures exert an enormous contractile load on the porous matrix. Due to the challenge of simultaneously monitoring imbibition and deformation with high spatial resolution, the resulting coupling of solid elasticity to liquid capillarity has remained largely unexplored. Here, we study water imbibition in mesoporous silica using optical imaging, gravimetry, and high-resolution dilatometry. In contrast to an expected Laplace pressure-induced contraction, we find a square-root-of-time expansion and an additional abrupt length increase when the menisci reach the top surface. The final expansion is absent when we stop the imbibition front inside the porous medium in a dynamic imbibition-evaporation equilibrium, as is typical for transpiration-driven hydraulic transport in plants, especially in trees. These peculiar deformation behaviors are validated by single-nanopore molecular dynamics simulations and described by a continuum model that highlights the importance of expansive surface stresses at the pore walls (Bangham effect) and the buildup or release of contractile Laplace pressures as menisci collectively advance, arrest, or disappear. Our model suggests that these observations apply to any imbibition process in nanopores, regardless of the liquid/solid combination, and that the Laplace contribution upon imbibition is precisely half that of vapor sorption, due to the linear pressure drop associated with viscous flow. Thus, simple deformation measurements can be used to quantify surface stresses and Laplace pressures or transport in a wide variety of natural and artificial porous media.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Proceedings of the National Academy of Sciences

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