arXiv · 1807.00019
Thermalization and Heating Dynamics in Open Generic Many-Body Systems
Abstract
The last decade has witnessed the remarkable progress in our understanding of thermalization in isolated quantum systems. Combining the eigenstate thermalization hypothesis with quantum measurement theory, we extend the framework of quantum thermalization to open many-body systems. A generic many-body system subject to continuous observation is shown to thermalize at a single trajectory level. We show that the nonunitary nature of quantum measurement causes several unique thermalization mechanisms that are unseen in isolated systems. We present numerical evidence for our findings by applying our theory to specific models that can be experimentally realized in atom-cavity systems and with quantum gas microscopy. Our theory provides a general method to determine an effective temperature of quantum many-body systems subject to the Lindblad master equation and thus should be applicable to noisy dynamics or dissipative systems coupled to nonthermal Markovian environments as well as continuously monitored systems. Our work provides yet another insight into why thermodynamics emerges so universally.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Yuto Ashida, Keiji Saito, Masahito Ueda. 2018-10-03. Thermalization and Heating Dynamics in Open Generic Many-Body Systems. https://doi.org/10.1103/physrevlett.121.170402
Cite the original work for its findings. Save a collection to share your selection of sources.