Subcritical Pitchfork Bifurcation Transition of a Single Nanoparticle in Strong Confinement
arXiv:2504.01353 · doi:10.1103/75zs-7d2k
Abstract
Confinement influences fluid properties. We show, employing molecular dynamics simulations with explicit solvents, that slit confinement drives a first-order transition for a small nanoparticle between staying at the slit center and binding to the slit surfaces. The transition follows a subcritical pitchfork bifurcation, accompanying a similar transition of the nanoparticle's lateral diffusion, depending on interparticle interactions and confinement interfaces. Our findings underscore the necessity for advancing molecular hydrodynamics under strong confinement.
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