Control of collective effects in chiral active colloidal systems

ORAL

Abstract

Chiral active systems represent a class of active matter systems where the constituent particles break time reversal symmetry by orbiting or spinning, rather than self-propulsion. Similar to the emergence of flocking states in self-propelled systems, novel collective effects such as active crystallization and circulating clusters have been observed in biological chiral active systems. Here we experimentally study chiral colloidal systems that are driven by external fields. We show that in a system of spinning colloidal magnets driven by a rotational magnetic field the system phase separates into circulating clusters with unidirectional edge flows. The emergent behavior is sensitive to the particle shape and by using particles of different geometries we demonstrate the formation of different collective phases. In addition to the hydrodynamic interactions between spinning particle, we introduce diffusiophoretic interactions by suspending the hematite colloids in H2O2 where they generate phoretic flows in the presence of UV light. The added interfacial flows lead to the formation of bound states between spinning colloids that are stabilized through near-field hydrodynamic and chemical interactions and at a collective level cause a loss in structural cohesion of the circulating clusters. Finally, we use two-photon-polymerization lithography to fabricate geometrically anisotropic colloids that exhibit controllable chiral motion in uniform electric fields, even in the absence of any external rotating field.

*Acknowledgment is made to the Donors of the American Chemical Society Petroleum Research Fund for support (or partial support) of this research. This work was also supported by the National Science Foundation (No. EES-2000202, EES-2219558, EES-2306449) and supported by the NSF FAMU CREST Center award (No. EES-1735968). This material is based upon work supported by the Air Force Office of Scientific Research under award number FA9550-22-1-0247. All the work was performed at the National High Magnetic Field Laboratory, which is supported by National Science Foundation Cooperative Agreement No. DMR-1644779 and the State of Florida. Any opinions, findings, and conclusions or recommendations expressed in this material are those of the author(s) and do not necessarily reflect the views of the United States Air Force.

Publication: Control of colloidal cohesive states in active chiral fluids, Accepted, Communications Physics

Presenters

  • Jaideep Katuri

    • National High Magnetic Field laboratory

Authors

  • Jaideep Katuri

    • National High Magnetic Field laboratory
  • Navneet Kaur

    • FSU-FAMU College of Engineering
  • William E Uspal

    • University of Hawai'i at Manoa
  • Allison Cornelius

    • FSU-FAMU College of Engineering
  • Jamel Ali

    • Department of Chemical and Biomedical Engineering, FAMU-FSU College of Engineering, Tallahassee, FL 32310, USA.