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Nicolas Sanson

Publications and source records attributed to Nicolas Sanson.

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Granular aqueous suspensions with controlled inter-particular friction and adhesion

We present a simple route to obtain large quantities of suspensions of non-Brownian particles with stimuli-responsive surface properties to study the relation between their flow and interparticle interactions. We perform an alkaline hydrolysis reaction on poly(methyl methacrylate) (PMMA) particles to obtain poly(sodium methacrylate) (PMAA-Na) particles. We characterize the quasi-static macroscopic frictional response of their aqueous suspensions using a rotating drum. The suspensions are frictionless when the particles are dispersed in pure water. We relate this state to the presence of electrosteric repulsion between the charged surfaces of the ionized PMAA-Na particles in water. Then we add monovalent and multivalent ions (Na+, Ca2+, La3+) and we observe that the suspensions become frictional whatever the valency. For divalent and trivalent ions, the quasi-static avalanche angle {\theta}c at large ionic strength is greater than that of frictional PMMA particles in water, suggesting the presence of adhesion. Finally, a decrease in the pH of the suspending solution leads to a transition between a frictionless plateau and a frictional one. We perform Atomic Force Microscopy (AFM) to relate our macroscopic observations to the surface features of the particles. In particular, we show that the increase in friction in the presence of multivalent ions or under acidic conditions is driven by a nanoscopic phase separation and the bundling of polyelectrolyte chains at the surface of the particle. Our results highlight the importance of surface interactions in the rheology of granular suspensions. Our particles provide a simple, yet flexible platform to study frictional suspension flows.

cond-mat.soft

Near-surface rheology and hydrodynamic boundary condition of semi-dilute polymer solutions

Understanding confined flows of complex fluids requires simultaneous access to the mechanical behaviour of the liquid and the boundary condition at the interfaces. Here, we use evanescent wave microscopy to investigate near-surface flows of semi-dilute, unentangled polyacrylamide solutions. By using both neutral and anionic polymers, we show that monomer charge plays a key role in confined polymer dynamics. For solutions in contact with glass, the neutral polymers display chain-sized adsorbed layers, while a shear-rate-dependent apparent slip length is observed for anionic polymer solutions. The slip lengths measured at all concentrations collapse onto a master curve when scaled using a simple two-layer depletion model with non-Newtonian viscosity. A transition from an apparent slip boundary condition to a chain-sized adsorption layer is moreover highlighted by screening the charge with additional salt in the anionic polymer solutions. We anticipate that our study will be a starting point for more complex studies relating the polymer dynamics at interfaces to their chemical and physical composition.

cond-mat.soft

Thermoresponsive Toughening in LCST-Type Hydrogels: Comparison between Semi-Interpenetrated and Grafted Networks

Hydrophilic and LCST polymer chains, poly(N,N-dimethylacrylamide) (PDMA) and poly(Nisopropylacrylamide)(PNIPA), were combined in semi-interpenetrated architectures toinvestigate their responsive properties in swollen isochoric conditions comparatively tografted network structures. Using equal weight fractions of PDMA and PNIPA, semi-IPNdesigned with opposite topologies have demonstrated a thermoresponsive behavior with verydifferent structure/properties relationships as investigated by calorimetry, swellingexperiments, tensile tests and 2D neutron scattering at rest and under deformation. In the caseof the PDMA network interpenetrated by linear PNIPA chains, the phase transition of PNIPAgives rise to the formation of large microdomains, loosely percolating the PDMA network.Above the transition, the enhancement of the mechanical properties remains low in terms ofelastic modulus and fracture energy. Conversely, the opposite topology, with PDMA chainsinterpenetrating the crosslinked PNIPA network, brings a large improvement of themechanical properties at high temperature with a 10-fold increase of the modulus and veryhigh fracture energy. By comparison with grafted hydrogels of similar composition anddifferent topologies, the impact of the primary structure over the phase-separated morphologyand the resulting mechanical properties was clearly highlighted.

cond-mat.soft