Related Experiment Video
Updated: May 5, 2026

Temporal Ordering of Dynamic Expression Data from Detailed Spatial Expression Maps
Published on: February 9, 2017
Spatially organized dynamical states in chemical oscillator networks: synchronization, dynamical differentiation, and
Mahesh Wickramasinghe1, István Z Kiss
1Department of Chemistry, Saint Louis University, St. Louis, Missouri, United States of America.
Abstract:
Dynamical processes in many engineered and living systems take place on complex networks of discrete dynamical units. We present laboratory experiments with a networked chemical system of nickel electrodissolution in which synchronization patterns are recorded in systems with smooth periodic, relaxation periodic, and chaotic oscillators organized in networks composed of up to twenty dynamical units and 140 connections. The reaction system formed domains of synchronization patterns that are strongly affected by the architecture of the network. Spatially organized partial synchronization could be observed either due to densely connected network nodes or through the 'chimera' symmetry breaking mechanism. Relaxation periodic and chaotic oscillators formed structures by dynamical differentiation. We have identified effects of network structure on pattern selection (through permutation symmetry and coupling directness) and on formation of hierarchical and 'fuzzy' clusters. With chaotic oscillators we provide experimental evidence that critical coupling strengths at which transition to identical synchronization occurs can be interpreted by experiments with a pair of oscillators and analysis of the eigenvalues of the Laplacian connectivity matrix. The experiments thus provide an insight into the extent of the impact of the architecture of a network on self-organized synchronization patterns.
Related Concept Videos
State Space Representation
Consider an RLC circuit, a...
Entropy Changes Accompanying Specific Processes
Dynamic Equilibrium
Oscillations about an Equilibrium Position
Atomic Nuclei: Nuclear Relaxation Processes
Second Law of Thermodynamics

