Brownian motion near a soft surface
Yilin Ye (LOMA, LPMC), Yacine Amarouchene (LOMA), Rapha\"el Sarfati (CU), David S. Dean (LOMA), Thomas Salez (LOMA)

TL;DR
This paper develops a theoretical framework for understanding Brownian motion near soft surfaces, incorporating hydrodynamics, thermal fluctuations, and softness effects, and validates findings through numerical simulations.
Contribution
It introduces a comprehensive model combining hydrodynamics and thermal fluctuations near soft surfaces, revealing a negative added mass and modified noise characteristics.
Findings
Softness induces a negative, position-dependent added mass.
Surface softness modifies the noise correlator and introduces a drift term.
Intermediate-time diffusion remains unaffected by surface softness.
Abstract
Brownian motion near soft surfaces is a situation widely encountered in nanoscale and biological physics. However, a complete theoretical description is lacking to date. Here, we theoretically investigate the dynamics of a two-dimensional colloid in an arbitrary external potential and near a soft surface. The latter is minimally modelled by a Winkler's foundation, and we restrict the study to the colloidal motion in the direction perpendicular to the surface. We start from deterministic hydrodynamic considerations, by invoking the already-established leading-order soft-lubrication forces acting on the particle. Importantly, a negative softness-induced and position-dependent added mass is identified. We then incorporate thermal fluctuations in the description. In particular, an effective Hamiltonian formulation is introduced and a temperature-dependent generalized potential is…
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