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Dynamical and conformational behavior of a polymer in a crowded solution

Published 26 Aug 2026 in cond-mat.soft, cond-mat.stat-mech, and physics.comp-ph | (2608.25242v1)

Abstract: We investigate the structure and dynamics of a polymer in a fluid containing mobile spherical colloidal crowders of radius RR. We compare and contrast the behavior with Langevin dynamics (LD) and lattice--Boltzmann molecular dynamics (LBMD), the latter incorporating long-range hydrodynamic interactions. Both the colloid size relative to the monomer radius rr and the volume fraction φφ are varied to determine how crowding modifies polymer behavior. Increasing volume fraction induces polymer compaction, with the mechanism strongly dependent on the size ratio R/rR/r. Small colloids primarily modify the short-wavelength polymer conformation, causing self-avoiding-walk-like behavior to persist to shorter length scales, whereas large colloids reduce the effective long-wavelength Flory exponent, indicating degraded solvent quality consistent with a confinement-blob picture. Polymer diffusion exhibits distinct behavior in LD and LBMD. In LD, diffusion decreases rapidly and depends strongly on R/rR/r; a phenomenological scaling involving ln(1+R/r)\ln(1+R/r) captures this size dependence, and additional scaling with RgR_g reduces scatter, indicating polymer-scale correlations induced by crowding. In contrast, LBMD diffusion follows an effective-medium-like exponential dependence on concentration, governed by hydrodynamic coupling. Rouse-mode analysis identifies three regimes: scaling breakdown at low volume fraction, Zimm-like behavior at intermediate density in both LD and LB, and at high density hydrodynamic screening in LB with confinement-dominated dynamics in LD.

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