Nonlinear response of dense colloidal suspensions under oscillatory shear: Mode-coupling theory and FT-rheology experiments
arXiv:1010.2587 · doi:10.1103/PhysRevE.82.061401
Abstract
Using a combination of theory, experiment and simulation we investigate the nonlinear response of dense colloidal suspensions to large amplitude oscillatory shear flow. The time-dependent stress response is calculated using a recently developed schematic mode-coupling-type theory describing colloidal suspensions under externally applied flow. For finite strain amplitudes the theory generates a nonlinear response, characterized by significant higher harmonic contributions. An important feature of the theory is the prediction of an ideal glass transition at sufficiently strong coupling, which is accompanied by the discontinuous appearance of a dynamic yield stress. For the oscillatory shear flow under consideration we find that the yield stress plays an important role in determining the non linearity of the time-dependent stress response. Our theoretical findings are strongly supported by both large amplitude oscillatory (LAOS) experiments (with FT-rheology analysis) on suspensions of thermosensitive core-shell particles dispersed in water and Brownian dynamics simulations performed on a two-dimensional binary hard-disc mixture. In particular, theory predicts nontrivial values of the exponents governing the final decay of the storage and loss moduli as a function of strain amplitude which are in excellent agreement with both simulation and experiment. A consistent set of parameters in the presented schematic model achieves to jointly describe linear moduli, nonlinear flow curves and large amplitude oscillatory spectroscopy.
References in corpus (11)
- Fingerprinting Soft Materials: A Framework for Characterizing Nonlinear Viscoelasticity
- Strain-Rate Frequency Superposition (SRFS) - A rheological probe of structural relaxation in soft materials
- Glass Rheology: From mode-coupling theory to a dynamical yield criterion
- A mode coupling theory for Brownian particles in homogeneous steady shear flow
- Viscoelasticity and shear flow of concentrated, non-crystallizing colloidal suspensions: Comparison with Mode-Coupling Theory
- Nonlinear rheology of colloidal dispersions
- A First-Principles Constitutive Equation for Suspension Rheology
- From Equilibrium to Steady State: The Transient Dynamics of Colloidal Liquids under Shear
- Shear stresses of colloidal dispersions at the glass transition in equilibrium and in flow
- Dynamic Glass Transition in Two Dimensions
- Dense colloidal suspensions under time-dependent shear
Cited by in corpus (29)
- Yield Stress Materials in Soft Condensed Matter
- Nonequilibrium glass transitions in driven and active matter
- Macroscopic yielding in jammed solids is accompanied by a non-equilibrium first-order transition in particle trajectories
- A First-Principles Constitutive Equation for Suspension Rheology
- Complex oscillatory yielding of model hard sphere glasses
- Time dependence in large amplitude oscillatory shear: a rheo-ultrasonic study of fatigue dynamics in a colloidal gel
- Overshoots in stress strain curves: Colloid experiments and schematic mode coupling theory
- Fluctuation-response relations for nonequilibrium diffusions with memory
- First-Principles Constitutive Equation for Suspension Rheology
- Controlling colloidal sedimentation using time dependent shear
- Variable-amplitude oscillatory shear response of amorphous materials
- Far-from-equilibrium Sheared Colloidal Liquids: Disentangling Relaxation, Advection, and Shear-induced Diffusion
- On the Bauschinger effect in supercoooled melts under shear: results from mode coupling theory and molecular dynamics simulations
- Large Amplitude Oscillatory Shear Study of a Colloidal Gel at the Critical State
- Simulation of dense non-Brownian suspensions with the lattice Boltzmann method: Shear jammed and fragile states
- How to define the storage and loss moduli for a rheologically nonlinear material?
- Unifying different interpretations of the nonlinear response in glass-forming liquids
- Mechanical Responses and Stress Fluctuations of a Supercooled Liquid in a Sheared Non-Equilibrium State
- Three Dimensional Flow of Colloidal Glasses
- Non-equilibrium dynamics of a confined colloidal bilayer in planar shear flow
- Unveiling the anatomy of mode-coupling theory
- Third and Fifth Harmonic Responses in Viscous Liquids
- Correlations and forces in sheared fluids with or without quenching
- Normal-stress coefficients and rod climbing in colloidal dispersions
- Viscosity of a sheared correlated (near-critical) model fluid in confinement
- A Well Defined Glass State Obtained by Oscillatory Shear
- Stress-structure relation in dense colloidal melt under forward and instantaneous reversal of shear
- Orthogonal Superposition Rheometry of soft core-shell microgels
- Depinning dynamics of confined colloidal dispersions under oscillatory shear