Connecting Shear Thinning and Dynamic Heterogeneity in Supercooled Liquids by Localized Elasticity
arXiv:2501.02437 · doi:10.1063/5.0282802
Abstract
Supercooled liquids exhibit complicated dynamical behaviors: At the microscopic level, the dynamics is heterogeneous spatially, known as dynamic heterogeneity. At the macroscopic level, the shear viscosity decreases as shear rate increases with a power law , known as shear thinning. The relation between these two universal dynamical phenomena remains elusive. With simulations of several model liquids in two and three dimensions, we show that they are quantitatively bridged by localized elasticity embodied as transient clusters that elastically respond to shear. Prominent dynamic heterogeneity emerges right after the massive yielding of these clusters, which is initiated by shear transformation zones and facilitated by elasticity-mediated interaction. With this picture, a scaling law relating shear thinning to the characteristic length of dynamic heterogeneity is found.
9 pages,12 figures
References in corpus (12)
- The role of local structure in dynamical arrest
- The building blocks of dynamical heterogeneities in dense granular media
- Breakup of dense colloidal aggregates under hydrodynamic stresses
- A First-Principles Constitutive Equation for Suspension Rheology
- Thirty milliseconds in the life of a supercooled liquid
- Long-lived neighbors determine the rheological response of glasses
- Elasticity, Facilitation and Dynamic Heterogeneity in Glass-Forming liquids
- Solid-that-flows picture of glass-forming liquids
- Elastoplasticity Mediates Dynamical Heterogeneity Below the Mode-Coupling Temperature
- Universal mechanism of shear thinning in supercooled liquids
- Localized elasticity governs the nonlinear rheology of colloidal supercooled liquids
- Quantification of the volume-fraction reduction of sheared fragile glass-forming liquids and its impact on rheology