Jamming, relaxation, and memory in a minimally structured glass former.

dc.contributor.author

Charbonneau, Patrick

dc.contributor.author

Morse, Peter K

dc.date.accessioned

2024-01-10T16:12:26Z

dc.date.available

2024-01-10T16:12:26Z

dc.date.issued

2023-11

dc.description.abstract

Structural glasses form through various out-of-equilibrium processes, including temperature quenches, rapid compression (crunches), and shear. Although each of these processes should be formally understandable within the recently formulated dynamical mean-field theory (DMFT) of glasses, the numerical tools needed to solve the DMFT equations up to the relevant physical regime do not yet exist. In this context, numerical simulations of minimally structured (and therefore mean-field-like) model glass formers can aid the search for and understanding of such solutions, thanks to their ability to disentangle structural from dimensional effects. We study here the infinite-range Mari-Kurchan model under simple out-of-equilibrium processes, and we compare results with the random Lorentz gas [J. Phys. A 55, 334001 (2022)10.1088/1751-8121/ac7f06]. Because both models are mean-field-like and formally equivalent in the limit of infinite spatial dimensions, robust features are expected to appear in the DMFT as well. The comparison provides insight into temperature and density onsets, memory, as well as anomalous relaxation. This work also further enriches the algorithmic understanding of the jamming density.

dc.identifier.issn

2470-0045

dc.identifier.issn

2470-0053

dc.identifier.uri

https://hdl.handle.net/10161/29694

dc.language

eng

dc.publisher

American Physical Society (APS)

dc.relation.ispartof

Physical review. E

dc.relation.isversionof

10.1103/physreve.108.054102

dc.rights.uri

https://creativecommons.org/licenses/by-nc/4.0

dc.title

Jamming, relaxation, and memory in a minimally structured glass former.

dc.type

Journal article

duke.contributor.orcid

Charbonneau, Patrick|0000-0001-7174-0821

pubs.begin-page

054102

pubs.issue

5-1

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

108

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