%0 Journal Article %T Inhomogeneous shear flows in soft jammed materials with tunable attractive forces %+ Laboratoire de Physique de la Matière Condensée et Nanostructures (LPMCN) %+ Laboratoire Charles Coulomb (L2C) %A Chaudhuri, Pinaki %A Berthier, Ludovic %A Bocquet, Lydéric %Z 12 pages, 12 figures Journal: Phys. Rev. E 85, 021503 (2012) %< avec comité de lecture %Z L2C:11-321 %@ 1539-3755 %J Physical Review E : Statistical, Nonlinear, and Soft Matter Physics %I American Physical Society %V 85 %P 021503 %8 2012-04-04 %D 2012 %Z 1111.5957 %R 10.1103/PhysRevE.85.021503 %Z Physics [physics]/Condensed Matter [cond-mat]/Soft Condensed Matter [cond-mat.soft]Journal articles %X We perform molecular dynamics simulations to characterize the occurrence of inhomogeneous shear flows in soft jammed materials. We use rough walls to impose a simple shear flow and study the athermal motion of jammed assemblies of soft particles, both for purely repulsive interactions and in the presence of an additional short-range attraction of varying strength. In steady state, pronounced flow inhomogeneities emerge for all systems when the shear rate becomes small. Deviations from linear flow are stronger in magnitude and become very long-lived when the strength of the attraction increases, but differ from permanent shear-bands. Flow inhomogeneities occur in a stress window bounded by the dynamic and static yield stress values. Attractive forces enhance the flow heterogeneities because they accelerate stress relaxation, thus effectively moving the system closer to the yield stress regime where inhomogeneities are most pronounced. The present scenario for understanding the effect of particle adhesion on shear localization, which is based on detailed molecular dynamics simulations with realistic particle interactions, differs qualitatively from previous qualitative explanations and ad-hoc theoretical modelling. %G English %2 https://hal.science/hal-00685186/document %2 https://hal.science/hal-00685186/file/PhysRe4.pdf %L hal-00685186 %U https://hal.science/hal-00685186 %~ CNRS %~ UNIV-LYON1 %~ L2C %~ MIPS %~ UNIV-MONTPELLIER %~ UDL %~ UNIV-LYON %~ UM-2015-2021