Order induces toughness in anisotropic colloidal crystal composites

Fuente: arXiv
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Main Authors: Vilchez, Victoria, Zhou, Shitong, Bouville, Florian
Format: Preprint
Published: 2024
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_version_ 1866929218326102016
author Vilchez, Victoria
Zhou, Shitong
Bouville, Florian
author_facet Vilchez, Victoria
Zhou, Shitong
Bouville, Florian
contents Spatial ordering of matter elicits exotic properties sometimes absent from a material's constituents. A few highly mineralised natural materials achieve high toughness through delocalised damage, whereas synthetic particulate composites must trade toughness for mineral content. We test whether ordering the mineral phase in particulate composites through the formation of macroscopic colloidal crystals can trigger the same damage resistance found in natural materials. Our macroscopic silica rod based anisotropic colloidal crystal composites are processed fully at room temperature and pressure, reach volume fraction of mineral higher than 80%, and aided by a ductile interface, unveil plastic strain reaching 10% through the collective movement of rods and damage delocalisation over millimetres. These composites demonstrate key design rules to break free from conventionally accepted structural materials properties trade-off.
format Preprint
id arxiv_https___arxiv_org_abs_2401_11727
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Order induces toughness in anisotropic colloidal crystal composites
Vilchez, Victoria
Zhou, Shitong
Bouville, Florian
Materials Science
Soft Condensed Matter
Spatial ordering of matter elicits exotic properties sometimes absent from a material's constituents. A few highly mineralised natural materials achieve high toughness through delocalised damage, whereas synthetic particulate composites must trade toughness for mineral content. We test whether ordering the mineral phase in particulate composites through the formation of macroscopic colloidal crystals can trigger the same damage resistance found in natural materials. Our macroscopic silica rod based anisotropic colloidal crystal composites are processed fully at room temperature and pressure, reach volume fraction of mineral higher than 80%, and aided by a ductile interface, unveil plastic strain reaching 10% through the collective movement of rods and damage delocalisation over millimetres. These composites demonstrate key design rules to break free from conventionally accepted structural materials properties trade-off.
title Order induces toughness in anisotropic colloidal crystal composites
topic Materials Science
Soft Condensed Matter
url https://arxiv.org/abs/2401.11727