Solution of disordered microphases in the Bethe approximation.

dc.contributor.author

Charbonneau, Patrick

dc.contributor.author

Tarzia, Marco

dc.date.accessioned

2022-05-02T17:22:50Z

dc.date.available

2022-05-02T17:22:50Z

dc.date.issued

2021-07

dc.date.updated

2022-05-02T17:22:49Z

dc.description.abstract

The periodic microphases that self-assemble in systems with competing short-range attractive and long-range repulsive (SALR) interactions are structurally both rich and elegant. Significant theoretical and computational efforts have thus been dedicated to untangling their properties. By contrast, disordered microphases, which are structurally just as rich but nowhere near as elegant, have not been as carefully considered. Part of the difficulty is that simple mean-field descriptions make a homogeneity assumption that washes away all of their structural features. Here, we study disordered microphases by exactly solving a SALR model on the Bethe lattice. By sidestepping the homogenization assumption, this treatment recapitulates many of the key structural regimes of disordered microphases, including particle and void cluster fluids as well as gelation. This analysis also provides physical insight into the relationship between various structural and thermal observables, between criticality and physical percolation, and between glassiness and microphase ordering.

dc.identifier.issn

0021-9606

dc.identifier.issn

1089-7690

dc.identifier.uri

https://hdl.handle.net/10161/24979

dc.language

eng

dc.publisher

AIP Publishing

dc.relation.ispartof

The Journal of chemical physics

dc.relation.isversionof

10.1063/5.0052111

dc.subject

cond-mat.soft

dc.subject

cond-mat.soft

dc.subject

cond-mat.dis-nn

dc.subject

cond-mat.stat-mech

dc.title

Solution of disordered microphases in the Bethe approximation.

dc.type

Journal article

duke.contributor.orcid

Charbonneau, Patrick|0000-0001-7174-0821

pubs.begin-page

024501

pubs.issue

2

pubs.organisational-group

Duke

pubs.organisational-group

Trinity College of Arts & Sciences

pubs.organisational-group

Chemistry

pubs.organisational-group

Physics

pubs.publication-status

Published

pubs.volume

155

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