000829481 001__ 829481 000829481 005__ 20240619083537.0 000829481 0247_ $$2doi$$a10.1103/PhysRevFluids.2.043301 000829481 0247_ $$2Handle$$a2128/14249 000829481 0247_ $$2WOS$$aWOS:000403686400001 000829481 0247_ $$2altmetric$$aaltmetric:19783307 000829481 037__ $$aFZJ-2017-03174 000829481 041__ $$aEnglish 000829481 082__ $$a530 000829481 1001_ $$0P:(DE-Juel1)130616$$aDhont, Jan K.G.$$b0$$eCorresponding author$$ufzj 000829481 245__ $$aNonuniform flow in soft glasses of colloidal rods 000829481 260__ $$aCollege Park, MD$$bAPS$$c2017 000829481 3367_ $$2DRIVER$$aarticle 000829481 3367_ $$2DataCite$$aOutput Types/Journal article 000829481 3367_ $$0PUB:(DE-HGF)16$$2PUB:(DE-HGF)$$aJournal Article$$bjournal$$mjournal$$s1493121738_8494 000829481 3367_ $$2BibTeX$$aARTICLE 000829481 3367_ $$2ORCID$$aJOURNAL_ARTICLE 000829481 3367_ $$00$$2EndNote$$aJournal Article 000829481 520__ $$aDespite our reasonably advanced understanding of the dynamics and flow of glasses made of spherical colloids, the role of shape, i.e., the respective behavior of glasses formed by rodlike, particles is virtually unexplored. Recently, long, thin and highly charged rods (fd-virus particles) were found to vitrify in aqueous suspensions at low ionic strength [Phys. Rev. Lett. 110, 015901 (2013)]. The glass transition of these long-ranged repulsive rods occurs at a concentration far above the isotropic-nematic coexistence region and is characterized by the unique arrest of both the dynamics of domains that constitute the chiral-nematic orientational texture, as well as individual rods inside the domains. Hence, two relevant length scales exist: the domain size of a few hundreds of microns, and the rod-cage size of a few microns, inside the domains. We show that the unique dual dynamic arrest and the existing of two widely separated length scales imparts an unprecedented, highly heterogeneous flow behavior with three distinct signatures. Beyond a weak stress plateau at very small shear rates that characterizes the glass, the kinetic arrest of the domain dynamics gives rise to internal fracture, as a result of domain-domain interactions, as well as wall partial slip. It is shown that, on increasing the shear rate, the fractured plug flow changes to a shear-banded flow profile due to the stress response of the kinetically arrested aligned rods within the domains. Shear-gradient banding occurs due to the strong thinning of the uniform chiral-nematic phase within the domains, i.e., complying with the classic shear-banding scenario, giving rise to a stress plateau in the flow curve. Finally, a linear (uniform) velocity profile is found at the highest shear rates. Vorticity banding is also observed at intermediate and high shear rates. These results point to the crucial role of particle shape in tailoring the flow properties of dense colloidal suspensions. 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