Dynamics of a three-ring BZ chemical reaction-diffusion oscillator network

ORAL

Abstract

We confine the auto-catalytic, light-sensitive, Belousov-Zhabotinsky reaction to micro-fabricated networks of containers of nanoliter volume constructed from the elastomer PDMS using soft lithography. Each container can be regarded as a single pointlike network node that emits and receives inhibitory and excitatory chemical signals. Here we present the dynamics of a reaction-diffusion 3-ring chemical oscillator network. This network has two large stable attractors with large basins of attraction; clockwise and counterclockwise waves of excitation. In this work we discuss the role that topology has on the network dynamics and compare experiment with two theoretical phase models: the chemical Vanag-Epstein model and the Kuramoto model.

*We acknowledge financial support from the U. S. Army Research Laboratory and the U. S. Army Research Office under contract/ grant number W911NF-16-1-0094, and the microfluidics facility of the NSF MRSEC DMR-2011846 and NSF-DMREF 1534890.

Presenters

  • Maria Eleni Moustaka

    • Physics, Brandeis University
    • Brandeis Univ

Authors

  • Maria Eleni Moustaka

    • Physics, Brandeis University
    • Brandeis Univ
  • Michael M Norton

    • Center for Neural Engineering, Pennsylvania State University
    • Brandeis Univ
    • Pennsylvania State University
  • Christopher Simonetti

    • Brandeis Univ
  • Ian Hunter

    • Physics, Brandeis University
    • Brandeis Univ
  • James V Sheehy

    • Brandeis Univ
  • Seth Fraden

    • Physics, Brandeis University
    • Brandeis Univ
    • Department of Physics, Brandeis University