Length-scales in sheared soft matter depend sensitively on molecular interactions
arXiv:2008.09428 · doi:10.1103/PhysRevResearch.2.032064
Abstract
The structure and degree of order in soft matter and other materials is intimately connected to the nature of the interactions between the particles. One important research goal is to find suitable control mechanisms, to enhance or suppress different structures. Using dynamical density functional theory, we investigate the interplay between external shear and the characteristic length-scales in the interparticle correlations of a model system. We show that shear can controllably change the characteristic length-scale from one to another quite distinct value. Moreover, with specific small changes in the form of the particle interactions, the applied shear can either selectively enhance or suppress the different characteristic wavelengths of the system, thus showing how to tune these. Our results suggest that the nonlinear response to flow can be harnessed to design novel actively responsive materials.
8 pages, 2 figures
References in corpus (8)
- Dynamical density functional theory for interacting Brownian particles: stochastic or deterministic?
- Colloidal Gels Tuned by Oscillatory Shear
- Structure-property relationships via recovery rheology in viscoelastic materials
- A dynamic density functional theory for particles in a flowing solvent
- Solidification fronts in supercooled liquids: how rapid fronts can lead to disordered glassy solids
- Solidification in soft-core fluids: disordered solids from fast solidification fronts
- Nanoparticle diffusion in sheared cellular blood flow
- Dynamical density functional theory analysis of the laning instability in sheared soft matter