TY - JOUR
T1 - Topological structure and dynamics of three-dimensional active nematics
AU - Duclos, Guillaume
AU - Adkins, Raymond
AU - Banerjee, Debarghya
AU - Peterson, Matthew S.E.
AU - Varghese, Minu
AU - Kolvin, Itamar
AU - Baskaran, Arvind
AU - Pelcovits, Robert A.
AU - Powers, Thomas R.
AU - Baskaran, Aparna
AU - Toschi, Federico
AU - Hagan, Michael F.
AU - Streichan, Sebastian J.
AU - Vitelli, Vincenzo
AU - Beller, Daniel A.
AU - Dogic, Zvonimir
PY - 2020/3/6
Y1 - 2020/3/6
N2 - Topological structures are effective descriptors of the nonequilibrium dynamics of diverse many-body systems. For example, motile, point-like topological defects capture the salient features of two-dimensional active liquid crystals composed of energy-consuming anisotropic units. We dispersed force-generating microtubule bundles in a passive colloidal liquid crystal to form a three-dimensional active nematic. Light-sheet microscopy revealed the temporal evolution of the millimeter-scale structure of these active nematics with single-bundle resolution. The primary topological excitations are extended, charge-neutral disclination loops that undergo complex dynamics and recombination events. Our work suggests a framework for analyzing the nonequilibrium dynamics of bulk anisotropic systems as diverse as driven complex fluids, active metamaterials, biological tissues, and collections of robots or organisms.
AB - Topological structures are effective descriptors of the nonequilibrium dynamics of diverse many-body systems. For example, motile, point-like topological defects capture the salient features of two-dimensional active liquid crystals composed of energy-consuming anisotropic units. We dispersed force-generating microtubule bundles in a passive colloidal liquid crystal to form a three-dimensional active nematic. Light-sheet microscopy revealed the temporal evolution of the millimeter-scale structure of these active nematics with single-bundle resolution. The primary topological excitations are extended, charge-neutral disclination loops that undergo complex dynamics and recombination events. Our work suggests a framework for analyzing the nonequilibrium dynamics of bulk anisotropic systems as diverse as driven complex fluids, active metamaterials, biological tissues, and collections of robots or organisms.
UR - https://www.scopus.com/pages/publications/85081532729
U2 - 10.1126/science.aaz4547
DO - 10.1126/science.aaz4547
M3 - Article
C2 - 32139540
SN - 0036-8075
VL - 367
SP - 1120
EP - 1124
JO - Science
JF - Science
IS - 6482
ER -