Viscoelasticity of colloidal polycrystals doped with impurities
arXiv:1509.07987 · doi:10.1103/PhysRevE.92.032307
Abstract
We investigate how the microstructure of a colloidal polycrystal influences its linear viscoelasticity. We use thermosensitive copolymer micelles that arrange in water in a cubic crystalline lattice, yielding a colloidal polycrystal. The polycrystal is doped with a small amount of nanoparticles, of size comparable to that of the micelles, which behave as impurities and thus partially segregate in the grain boundaries. We show that the shear elastic modulus only depends on the packing of the micelles and does not vary neither with the presence of nanoparticles nor with the crystal microstructure. By contrast, we find that the loss modulus is strongly affected by the presence of nanoparticles. A comparison between rheology data and small-angle neutron scattering data suggests that the loss modulus is dictated by the total amount of nanoparticles in the grain boundaries, which in turn depends on the sample microstructure.
References in corpus (5)
- Strain-Rate Frequency Superposition (SRFS) - A rheological probe of structural relaxation in soft materials
- Grain refinement and partitioning of impurities in the grain boundaries of a colloidal polycrystal
- Plasticity of a colloidal polycrystal under cyclic shear
- Structure of nanoparticles embedded in micellar polycrystals
- Nucleation and growth of micellar polycrystals under time-dependent volume fraction conditions