Thermal analog of gimbal lock in a colloidal ferromagnetic Janus rod
Physical Review Letters American Physical Society 115:24 (2015) 248301
Abstract:
We report an entropy-driven orientational hopping transition in a magnetically confined colloidal Janus rod. In a magnetic field, the sedimented rod randomly hops between horizontal and vertical states: the latter state comes at a substantial gravitational cost at no reduction of magnetic potential energy. The probability distribution over the angles of the rod shows that the presence of an external magnetic field leads to the emergence of a metastable vertical state separated from the ground state by an effective barrier. This barrier does not come from the potential energy but rather from the vast gain in phase space available to the rod as it approaches the vertical state. The loss of rotational degree of freedom that gives rise to this effect is a statistical mechanical analogue of the phenomenon of gimbal lock from classical mechanics.Biphasic, Lyotropic, Active Nematics
Physical Review Letters American Physical Society (APS) 113:24 (2014) 248303
Biphasic, Lyotropic, Active Nematics
Physical Review Letters American Physical Society (APS) 113:24 (2014) 248303
Abstract:
We perform dynamical simulations of a two-dimensional active nematic fluid in coexistence with an isotropic fluid. Drops of active nematic become elongated, and an effective anchoring develops at the nematic-isotropic interface. The activity also causes an undulatory instability of the interface. This results in defects of positive topological charge being ejected into the nematic, leaving the interface with a diffuse negative charge. Quenching the active lyotropic fluid results in a steady state in which phase-separating domains are elongated and then torn apart by active stirring.Active nematic materials with substrate friction.
Physical review. E, Statistical, nonlinear, and soft matter physics 90:6 (2014) 062307
Abstract:
Active turbulence in dense active systems is characterized by high vorticity on a length scale that is large compared to that of individual entities. We describe the properties of active turbulence as momentum propagation is screened by frictional damping. As friction is increased, the spacing between the walls in the nematic director field decreases as a consequence of the more rapid velocity decays. This leads to, first, a regime with more walls and an increased number of topological defects, and then to a jammed state in which the walls deliminate bands of opposing flow, analogous to the shear bands observed in passive complex fluids.Active nematic materials with substrate friction
Physical Review E American Physical Society (APS) 90:6 (2014) 062307