paper

Dynamical symmetry breaking as the origin of the zero--resistance state in an -driven system

arXiv:cond-mat/0302063 · doi:10.1103/PhysRevLett.91.056803

Abstract

Under a strong drive the zero-frequency linear response dissipative resistivity of a homogeneous state is allowed to become negative. We show that such a state is absolutely unstable. The only time-independent state of a system with a is characterized by a current which almost everywhere has a magnitude fixed by the condition that the nonlinear dissipative resistivity . As a result, the dissipative component of the electric field vanishes. The total current may be varied by rearranging the current pattern appropriately with the dissipative component of the -electric field remaining zero. This result, together with the calculation of Durst \emph{et. al.}, indicating the existence of regimes of applied microwave field and magnetic field where , explains the zero-resistance state observed by Mani \emph{et. al.} and Zudov \emph{et. al.}.

Published version