Scaling Laws and Paradoxical Metastable States in Nanofilament Entropic Separation

Fuente: arXiv
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Autori principali: Vilar, Jose M. G., Rubi, J. Miguel, Saiz, Leonor
Natura: Preprint
Pubblicazione: 2026
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author Vilar, Jose M. G.
Rubi, J. Miguel
Saiz, Leonor
author_facet Vilar, Jose M. G.
Rubi, J. Miguel
Saiz, Leonor
contents Entropic forces play a fundamental role in nanoscale phenomena, from colloidal self-assembly to biomolecular disaggregation. Here, we develop an exact analytical theory and find general scaling laws for the entropic separation of tether-mediated nanofilament bundles, revealing that a single dimensionless parameter--the ratio of the excluded-volume radius to the tether length--dictates whether filaments are pushed apart or, contrary to the usual expectation, pulled together. This unexpected regime challenges the view that entropic forces invariably promote disaggregation, instead uncovering conditions under which the bundles can remain in attractive metastable states. Brownian dynamics simulations confirm this paradoxical effect, offering predictive insights for applications in biophysics, soft matter physics, and nanotechnology.
format Preprint
id arxiv_https___arxiv_org_abs_2603_11732
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Scaling Laws and Paradoxical Metastable States in Nanofilament Entropic Separation
Vilar, Jose M. G.
Rubi, J. Miguel
Saiz, Leonor
Soft Condensed Matter
Statistical Mechanics
Biological Physics
Biomolecules
Entropic forces play a fundamental role in nanoscale phenomena, from colloidal self-assembly to biomolecular disaggregation. Here, we develop an exact analytical theory and find general scaling laws for the entropic separation of tether-mediated nanofilament bundles, revealing that a single dimensionless parameter--the ratio of the excluded-volume radius to the tether length--dictates whether filaments are pushed apart or, contrary to the usual expectation, pulled together. This unexpected regime challenges the view that entropic forces invariably promote disaggregation, instead uncovering conditions under which the bundles can remain in attractive metastable states. Brownian dynamics simulations confirm this paradoxical effect, offering predictive insights for applications in biophysics, soft matter physics, and nanotechnology.
title Scaling Laws and Paradoxical Metastable States in Nanofilament Entropic Separation
topic Soft Condensed Matter
Statistical Mechanics
Biological Physics
Biomolecules
url https://arxiv.org/abs/2603.11732