High-dimensional percolation criticality and hints of mean-field-like caging of the random Lorentz gas.

dc.contributor.author

Charbonneau, Benoit

dc.contributor.author

Charbonneau, Patrick

dc.contributor.author

Hu, Yi

dc.contributor.author

Yang, Zhen

dc.date.accessioned

2022-05-02T17:23:28Z

dc.date.available

2022-05-02T17:23:28Z

dc.date.issued

2021-08

dc.date.updated

2022-05-02T17:23:27Z

dc.description.abstract

The random Lorentz gas (RLG) is a minimal model for transport in disordered media. Despite the broad relevance of the model, theoretical grasp over its properties remains weak. For instance, the scaling with dimension d of its localization transition at the void percolation threshold is not well controlled analytically nor computationally. A recent study [Biroli et al., Phys. Rev. E 103, L030104 (2021)2470-004510.1103/PhysRevE.103.L030104] of the caging behavior of the RLG motivated by the mean-field theory of glasses has uncovered physical inconsistencies in that scaling that heighten the need for guidance. Here we first extend analytical expectations for asymptotic high-d bounds on the void percolation threshold and then computationally evaluate both the threshold and its criticality in various d. In high-d systems, we observe that the standard percolation physics is complemented by a dynamical slowdown of the tracer dynamics reminiscent of mean-field caging. A simple modification of the RLG is found to bring the interplay between percolation and mean-field-like caging down to d=3.

dc.identifier.issn

2470-0045

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2470-0053

dc.identifier.uri

https://hdl.handle.net/10161/24980

dc.language

eng

dc.publisher

American Physical Society (APS)

dc.relation.ispartof

Physical review. E

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10.1103/physreve.104.024137

dc.subject

cond-mat.dis-nn

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cond-mat.dis-nn

dc.subject

cond-mat.stat-mech

dc.title

High-dimensional percolation criticality and hints of mean-field-like caging of the random Lorentz gas.

dc.type

Journal article

duke.contributor.orcid

Charbonneau, Patrick|0000-0001-7174-0821

pubs.begin-page

024137

pubs.issue

2-1

pubs.organisational-group

Duke

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Trinity College of Arts & Sciences

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Chemistry

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Physics

pubs.publication-status

Published

pubs.volume

104

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