arXiv · 1710.09330
Incomplete thermalization from trap-induced integrability breaking: lessons from classical hard rods
Abstract
We study a one-dimensional gas of hard rods trapped in a harmonic potential, which breaks integrability of the hard-rod interaction in a non-uniform way. We explore the consequences of such broken integrability for the dynamics of a large number of particles and find three distinct regimes: initial, chaotic, and stationary. The initial regime is captured by an evolution equation for the phase-space distribution function. For any finite number of particles, this hydrodynamics breaks down and the dynamics become chaotic after a characteristic time scale determined by the inter-particle distance and scattering length. The system fails to thermalize over the time-scale studied ($10^4$ natural units), but the time-averaged ensemble is a stationary state of the hydrodynamic evolution. We close by discussing logical extensions of the results to similar systems of quantum particles.
Explore related subjects
Keep this discovery
Xiangyu Cao, Vir B. Bulchandani, Joel E. Moore. 2017-10-25. Incomplete thermalization from trap-induced integrability breaking: lessons from classical hard rods. https://doi.org/10.1103/physrevlett.120.164101
Cite the original work for its findings. Save a collection to share your selection of sources.