Towards a scale-bridging description of ferrogels and magnetic elastomers
arXiv:1502.03707 · doi:10.1088/0953-8984/27/32/325105
Abstract
Ferrogels and magnetic elastomers differentiate themselves from other materials by their unique capability of reversibly changing shape and mechanical properties under the influence of an external magnetic field. A crucial issue in the study of these outstanding materials is the interaction between the mesoscopic magnetic particles and the polymer matrix in which they are embedded. Here we analyze interactions between two such particles connected by a polymer chain, a situation representative for particle-crosslinked magnetic gels. To make a first step towards a scale-bridging description of the materials, effective potentials for mesoscopic configurational changes are specified using microscopic input obtained from simulations. Furthermore, the impact of the presence of magnetic interactions on the probability distributions and thermodynamic quantities of the system is considered. The resulting mesoscopic model potentials can be used to economically model the system on the particle length scales. This first coarse-graining step is important to realize simplified but realistic scale-bridging models for these promising materials.
16 pages, 18 figures
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- Tunable dynamic moduli of magnetic elastomers: from X-CT characterization to mesoscopic modeling
- Dynamics of a linear magnetic "microswimmer molecule"
- Magnetic susceptibility, nanorheology, and magnetoviscosity of magnetic nanoparticles in viscoelastic environments
- Getting drowned in a swirl: deformable bead-spring model microswimmers in external flow fields
- Magnetic elastomers as specific soft actuators -- predicting particular modes of deformation from selected configurations of magnetizable inclusions
- Stimuli-responsive twist actuators made from soft elastic composite materials -- linking mesoscopic and macroscopic descriptions
- Hydrodynamic description of (visco)elastic composite materials and relative strains as a new macroscopic variable
- Interplay between particle microstructure, network topology and sample shape in magnetic gels -- A molecular dynamics simulation study