Ultradense Sphere Packings Derived From Disordered Stealthy Hyperuniform Ground States
Abstract
Disordered stealthy hyperuniform (SHU) packings are an emerging class of exotic amorphous two-phase materials endowed with novel physical properties. Such packings of identical spheres have been created from SHU point patterns via a modified collective-coordinate optimization scheme that includes a soft-core repulsion, besides the standard `stealthy' pair potential. Using the distributions of minimum pair distances and nearest-neighbor distances, we find that when the stealthiness parameter is lower than 0.5, the maximal values of , denoted by , decrease to zero on average as the particle number increases if there are no soft-core repulsions. By contrast, the inclusion of soft-core repulsions results in very large independent of , reaching up to in the zero- limit and decreasing to at for , respectively. We obtain explicit formulas for as functions of and for a given . For , our soft-core SHU packings for small become configurationally very close to the jammed hard-particle packings created by fast compression algorithms, as measured by the pair statistics. As increases beyond , the packings form fewer contacts and linear polymer-like chains. The resulting structure factors and pair correlation functions reveal that soft-core repulsions significantly alter the short- and intermediate-range correlations in the SHU ground states. We also compute the spectral density , which can be used to estimate various physical properties (e.g., electromagnetic properties, fluid permeability, and mean survival time) of SHU two-phase dispersions. Our results offer a new route for discovering novel disordered hyperuniform two-phase materials with unprecedentedly high density.
Keywords
Cite
@article{arxiv.2504.16924,
title = {Ultradense Sphere Packings Derived From Disordered Stealthy Hyperuniform Ground States},
author = {Jaeuk Kim and Salvatore Torquato},
journal= {arXiv preprint arXiv:2504.16924},
year = {2025}
}
Comments
18 pages, 9 figures