Energy transfer mechanisms in a dipole chain: From energy equipartition to the formation of breathers
Alexandra Zampetaki, J. Pablo Salas, Peter Schmelcher

TL;DR
This paper investigates energy transfer in a classical dipole chain, revealing a transition from energy equipartition to localized breather formations and chaos as excitation energy increases.
Contribution
It introduces an analysis of the energy landscape, identifies an excitation energy threshold, and characterizes the transition from regular to chaotic dynamics in the dipole chain.
Findings
Weakly nonlinear regime approaches energy equipartition.
High-energy excitations lead to localized breathers.
Chaotic behavior emerges above a certain energy threshold.
Abstract
We study the energy transfer in a classical dipole chain of interacting rigid rotating dipoles. The underlying high--dimensional potential energy landscape is analyzed in particular by determining the equilibrium points and their stability in the common plane of rotation. Starting from the minimal energy configuration, the response of the chain to excitation of a single dipole is investigated. Using both the linearized and the exact Hamiltonian of the dipole chain, we detect an approximate excitation energy threshold between a weakly and a strongly nonlinear dynamics. In the weakly nonlinear regime, the chain approaches in the course of time the expected energy equipartition among the dipoles. For excitations of higher energy, strongly localized excitations appear whose trajectories in time are either periodic or irregular, relating to the well-known discrete or chaotic breathers,…
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