| Literature DB >> 34535551 |
Kristian Thijssen1,2, Dimitrius A Khaladj3, S Ali Aghvami4,5, Mohamed Amine Gharbi6, Seth Fraden4, Julia M Yeomans1, Linda S Hirst7, Tyler N Shendruk8.
Abstract
Coupling between flows and material properties imbues rheological matter with its wide-ranging applicability, hence the excitement for harnessing the rheology of active fluids for which internal structure and continuous energy injection lead to spontaneous flows and complex, out-of-equilibrium dynamics. We propose and demonstrate a convenient, highly tunable method for controlling flow, topology, and composition within active films. Our approach establishes rheological coupling via the indirect presence of fully submersed micropatterned structures within a thin, underlying oil layer. Simulations reveal that micropatterned structures produce effective virtual boundaries within the superjacent active nematic film due to differences in viscous dissipation as a function of depth. This accessible method of applying position-dependent, effective dissipation to the active films presents a nonintrusive pathway for engineering active microfluidic systems.Entities:
Keywords: active depletion; active matter; micropatterned control; nematic film; topological defects
Year: 2021 PMID: 34535551 PMCID: PMC8463884 DOI: 10.1073/pnas.2106038118
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205