Ultrahigh Poisson's ratio glasses
Abstract
The manner in which metallic glasses fail under external loading is known to correlate well with those glasses' Poisson's ratio : low- (compressible) glasses typically feature brittle failure patterns with scarce plastic deformation, while high- (incompressible) glasses typically fail in a ductile manner, accompanied by a high degree of plastic deformation and extensive liquid-like flow. Since the technological utility of metallic glasses depends on their ductility, materials scientists have been concerned with fabricating high- glassy alloys. To shed light on the underlying micromechanical origin of high- metallic glasses, we employ computer simulations of a simple glass-forming model with a single tunable parameter that controls the interparticle-potential's stiffness. We show that the presented model gives rise to ultra high- glasses, reaching and thus exceeding the most incompressible laboratory metallic glass. We discuss the possible role of the so-called unjamming transition in controlling the elasticity of ultra high- glasses. To this aim, we show that our higher- computer glasses host relatively softer quasilocalized glassy excitations, and establish relations between their associated characteristic frequency, macroscopic elasticity, and mechanical disorder.
Cite
@article{arxiv.2202.10993,
title = {Ultrahigh Poisson's ratio glasses},
author = {Edan Lerner},
journal= {arXiv preprint arXiv:2202.10993},
year = {2024}
}
Comments
9 pages, 9 figures