Complex and tunable heating in conformal field theories with structured drives via classical ergodicity breaking
Liang-Hong Mo, Roderich Moessner, Hongzheng Zhao

TL;DR
This paper explores how structured and random drives affect heating in conformal field theories, revealing controllable prethermal phases and ergodicity breaking through classical dynamical systems analysis.
Contribution
It introduces a classification of dynamical phases in driven CFTs using a non-linear classical dynamical system framework, including novel non-Hermitian phases with unique ergodic properties.
Findings
Identification of heating, non-heating, and prethermal phases in driven CFTs.
Discovery of a triply tunable prethermal lifetime depending on driving parameters.
Existence of a non-heating phase in non-Hermitian CFTs with an emergent compact subspace.
Abstract
Emission and absorption of energy are fundamental aspects of non-equilibrium dynamics. The heating induced by driving a many-body system is perhaps the most straightforward diagnostic of the process of equilibration, or the lack thereof. Gapless systems are particularly susceptible to drive-induced heating, and the capacity to control such heating is of experimental importance. Our study addresses this challenge in the framework of conformal field theory (CFT), for which we study families of structured drives up to the aperiodic Thue-Morse sequence. Concretely, we consider a class of spatially inhomogeneous Hamiltonians, where the operator evolution is governed by a non-linear classical dynamical system . The existence of invariant regions and fixed points of leads to different levels of ergodicity breaking. Upon bridging the gap between this dynamical system…
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Taxonomy
TopicsQuantum many-body systems · Quantum Mechanics and Non-Hermitian Physics · Quantum chaos and dynamical systems
