Prethermalization and entanglement dynamics in interacting topological
pumps
- URL: http://arxiv.org/abs/2103.15831v2
- Date: Mon, 23 May 2022 15:00:29 GMT
- Title: Prethermalization and entanglement dynamics in interacting topological
pumps
- Authors: Raffael Gawatz, Ajit C. Balram, Erez Berg, Netanel H. Lindner, and
Mark S. Rudner
- Abstract summary: We investigate the formation of quasisteady states in one-dimensional pumps of interacting fermions at non-integer filling fraction.
Potential disorder reduces the amplitude of fluctuations of the quasisteady state current around its universal value.
The lifetime of the quasisteady state remains nearly unaffected for disorder strengths up to the scale of the single-particle band gap.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We investigate the formation of quasisteady states in one-dimensional pumps
of interacting fermions at non-integer filling fraction, in the regime where
the driving frequency and interaction strength are small compared to the
instantaneous single-particle band gap throughout the driving cycle. The system
rapidly absorbs energy from the driving field, and approaches a quasisteady
state that locally resembles a maximal entropy state subject to the constraint
of fixed particle number in each of the system's single-particle Floquet bands.
We explore the nature of this quasisteady state through one-body observables
including the pumped current and natural orbital occupations, as well as the
(many-body) entanglement spectrum and entropy. Potential disorder significantly
reduces the amplitude of fluctuations of the quasisteady state current around
its universal value, while the lifetime of the quasisteady state remains nearly
unaffected for disorder strengths up to the scale of the single-particle band
gap. Interestingly, the natural orbital occupations and entanglement entropy
display patterns signifying the periodic entangling and disentangling of the
system's degrees of freedom over each driving cycle. Moreover, prominent
features in the system's time-dependent entanglement spectrum reveal the
emergence of new long timescales associated with the equilibration of
many-particle correlations.
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