Liquid-liquid phase separation driven by charge heterogeneity

Fuente: arXiv
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Main Authors: Notarmuzi, Daniele, Bianchi, Emanuela
Format: Preprint
Published: 2024
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author Notarmuzi, Daniele
Bianchi, Emanuela
author_facet Notarmuzi, Daniele
Bianchi, Emanuela
contents Globular proteins as well as recently synthesized colloids engineered with differently charged surface regions have in common a reduced bonding valence and a complex interaction pattern dominated by like-charge attraction and opposite-charge repulsion. While the impact of low functionality on the condensation of the liquid phase has been extensively studied, the combined effect of limited bonding valence and particle charge heterogeneity on the liquid-liquid phase separation has not been investigated yet. We numerically tackle this challenge in a systematic fashion by taking advantage of an efficient coarse-grained model grounded into a robust mean-field description. We consider a relatively simple surface pattern consisting of two charged polar caps and an oppositely charged equatorial belt and investigate how the interplay between geometry and electrostatics affect the critical point parameters. We find that electrostatics has a dramatic effect on the condensation of the liquid phase -- especially in the regime of large polar caps.
format Preprint
id arxiv_https___arxiv_org_abs_2401_10655
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Liquid-liquid phase separation driven by charge heterogeneity
Notarmuzi, Daniele
Bianchi, Emanuela
Soft Condensed Matter
Globular proteins as well as recently synthesized colloids engineered with differently charged surface regions have in common a reduced bonding valence and a complex interaction pattern dominated by like-charge attraction and opposite-charge repulsion. While the impact of low functionality on the condensation of the liquid phase has been extensively studied, the combined effect of limited bonding valence and particle charge heterogeneity on the liquid-liquid phase separation has not been investigated yet. We numerically tackle this challenge in a systematic fashion by taking advantage of an efficient coarse-grained model grounded into a robust mean-field description. We consider a relatively simple surface pattern consisting of two charged polar caps and an oppositely charged equatorial belt and investigate how the interplay between geometry and electrostatics affect the critical point parameters. We find that electrostatics has a dramatic effect on the condensation of the liquid phase -- especially in the regime of large polar caps.
title Liquid-liquid phase separation driven by charge heterogeneity
topic Soft Condensed Matter
url https://arxiv.org/abs/2401.10655