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Interface Engineering of Helium Confinement in Argon-Preplated MCM-41 Nanopores

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abstract

Atomic-scale modification of mesopore interfaces provides a route to tune the confinement experienced by adsorbed fluids, but how a specific interface preparation translates into the resulting microscopic confinement potential remains unclear. Here, we show that preplating MCM-41 with an argon monolayer modifies the effective pore interface by occupying strongly attractive regions of the heterogeneous silica surface and screening its atomic-scale corrugation. Grand-canonical Monte Carlo simulations of argon adsorption, low-temperature molecular dynamics, and helium test-particle insertion are combined with adsorption isotherms and neutron-scattering measurements to characterize the preplated pore at the atomic scale. Helium test-particle insertion calculations show that the modified interface shifts the helium adsorption minimum to an annular region inside the pore and produces a confinement landscape dominated by a smooth radial component. The resulting radial confinement potential can be described by a continuum cylindrical model, providing microscopic support for the effective potential used in earlier quantum Monte Carlo studies. Residual corrugation persists over multiple spatial scales and is accurately captured by a Gaussian process surrogate. These results demonstrate how atomic preplating can tailor nanopore confinement and provide an experimentally constrained microscopic potential for predictive studies of confined quantum fluids.

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  • Interface Engineering of Helium Confinement in Argon-Preplated MCM-41 Nanopores cond-mat.mtrl-sci · 2026-08-06 · conditional · none · ref 1 · internal anchor

    Argon preplating of MCM-41 nanopores screens the silica surface corrugation by up to about 34% and yields a helium confinement potential whose radial average reproduces the smooth cylindrical model used in earlier quantum Monte Carlo simulations.