Scale-Rich Network-Based Metamaterials

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Both, Csaba, Chen, Andrew Yen-Jong, Gao, Ting-Ting, Mooij, Niek, Charara, Mohammad, Portela, Carlos M., Barabási, Albert-László
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866909917827301376
author Both, Csaba
Chen, Andrew Yen-Jong
Gao, Ting-Ting
Mooij, Niek
Charara, Mohammad
Portela, Carlos M.
Barabási, Albert-László
author_facet Both, Csaba
Chen, Andrew Yen-Jong
Gao, Ting-Ting
Mooij, Niek
Charara, Mohammad
Portela, Carlos M.
Barabási, Albert-László
contents Materials, at their essence, are networks defined by homogeneity: uniform bonds, fixed thicknesses, and discrete length scales. Mechanical metamaterials, while representing structurally more diverse microstructures, remain defined by the homogeneity of their unit cells, pore sizes, or repeating features. In contrast, as network science has revealed, real-world and biological systems -- from the Internet to the brain -- derive their function from broad, multiscale variability in connectivity and link length. Here, we introduce Scale-Rich (SR) metamaterials, a design framework that embeds network heterogeneity into mechanical metamaterials, achieving order-of-magnitude heterogeneity in ligament lengths, thicknesses, and connectivity. Governed by only two parameters, SR networks span orders of magnitude in structural features, overcoming prior constraints in metamaterial design. Translating these network models into physically realizable materials, we use simulations and experiments to show that SR metamaterials exhibit properties inaccessible to traditional single-scale systems, including highly tunable elastic anisotropy, delocalized nonlinear deformation with high energy absorption, and programmable acoustic wave control. This network-science-based paradigm establishes a minimal yet universal framework for engineering multifunctional materials whose mechanical and acoustic behavior emerge directly from scale diversity itself.
format Preprint
id arxiv_https___arxiv_org_abs_2511_18108
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Scale-Rich Network-Based Metamaterials
Both, Csaba
Chen, Andrew Yen-Jong
Gao, Ting-Ting
Mooij, Niek
Charara, Mohammad
Portela, Carlos M.
Barabási, Albert-László
Soft Condensed Matter
Materials, at their essence, are networks defined by homogeneity: uniform bonds, fixed thicknesses, and discrete length scales. Mechanical metamaterials, while representing structurally more diverse microstructures, remain defined by the homogeneity of their unit cells, pore sizes, or repeating features. In contrast, as network science has revealed, real-world and biological systems -- from the Internet to the brain -- derive their function from broad, multiscale variability in connectivity and link length. Here, we introduce Scale-Rich (SR) metamaterials, a design framework that embeds network heterogeneity into mechanical metamaterials, achieving order-of-magnitude heterogeneity in ligament lengths, thicknesses, and connectivity. Governed by only two parameters, SR networks span orders of magnitude in structural features, overcoming prior constraints in metamaterial design. Translating these network models into physically realizable materials, we use simulations and experiments to show that SR metamaterials exhibit properties inaccessible to traditional single-scale systems, including highly tunable elastic anisotropy, delocalized nonlinear deformation with high energy absorption, and programmable acoustic wave control. This network-science-based paradigm establishes a minimal yet universal framework for engineering multifunctional materials whose mechanical and acoustic behavior emerge directly from scale diversity itself.
title Scale-Rich Network-Based Metamaterials
topic Soft Condensed Matter
url https://arxiv.org/abs/2511.18108