Chemical control of self-assembly by the electrosolvation force

Fuente: arXiv
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Main Authors: Wang, Sida, Walker-Gibbons, Rowan, Watkins, Bethany, Lin, Binghui, Krishnan, Madhavi
Format: Preprint
Published: 2024
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author Wang, Sida
Walker-Gibbons, Rowan
Watkins, Bethany
Lin, Binghui
Krishnan, Madhavi
author_facet Wang, Sida
Walker-Gibbons, Rowan
Watkins, Bethany
Lin, Binghui
Krishnan, Madhavi
contents Self-assembly of matter in solution generally relies on attractive interactions that overcome entropy and drive the formation of higher-order molecular and particulate structures. Such interactions play key roles in a variety of contexts, e.g., crystallisation, biomolecular folding and condensation, pathological protein aggregation, pharmaceuticals and fine chemicals. The electrosolvation force entails a new conceptual paradigm in the known palette of interactions that drive the spontaneous accretion and organisation of matter. However, an understanding of the underlying physical chemistry, and therefore the ability to exert control over and tune the interaction, remains incomplete. Here we demonstrate that this force arises from the structure of the interfacial electrolyte. Neutral molecules such as a different solvent, osmolytes or surfactants, can - even at very low concentrations in the medium - disrupt or reinforce pre-existing interfacial solvent structure, thereby furnishing unanticipated chemical tuning of the ability of matter to self-assemble. The observations further present unexpected mechanistic elements that may explain the impact of co-solvents and osmolytes on protein structure, stability and pathological protein condensation. Our findings shed new light on microscopic mechanisms that drive the emergence of order and structure from molecular to macroscopic scales in the solution phase.
format Preprint
id arxiv_https___arxiv_org_abs_2405_12099
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Chemical control of self-assembly by the electrosolvation force
Wang, Sida
Walker-Gibbons, Rowan
Watkins, Bethany
Lin, Binghui
Krishnan, Madhavi
Soft Condensed Matter
Self-assembly of matter in solution generally relies on attractive interactions that overcome entropy and drive the formation of higher-order molecular and particulate structures. Such interactions play key roles in a variety of contexts, e.g., crystallisation, biomolecular folding and condensation, pathological protein aggregation, pharmaceuticals and fine chemicals. The electrosolvation force entails a new conceptual paradigm in the known palette of interactions that drive the spontaneous accretion and organisation of matter. However, an understanding of the underlying physical chemistry, and therefore the ability to exert control over and tune the interaction, remains incomplete. Here we demonstrate that this force arises from the structure of the interfacial electrolyte. Neutral molecules such as a different solvent, osmolytes or surfactants, can - even at very low concentrations in the medium - disrupt or reinforce pre-existing interfacial solvent structure, thereby furnishing unanticipated chemical tuning of the ability of matter to self-assemble. The observations further present unexpected mechanistic elements that may explain the impact of co-solvents and osmolytes on protein structure, stability and pathological protein condensation. Our findings shed new light on microscopic mechanisms that drive the emergence of order and structure from molecular to macroscopic scales in the solution phase.
title Chemical control of self-assembly by the electrosolvation force
topic Soft Condensed Matter
url https://arxiv.org/abs/2405.12099