Abstract
Abstract
Based on exact integration of the Schrödinger equation, we numerically study microscopic contributions to the entropy production for the single electron transistor, a paradigmatic model describing a single Fermi level tunnel coupled to two baths of free fermions. To this end, we decompose the entropy production into a sum of information theoretic terms and study them across all relevant time scales, including the nonequilibrium steady state regime and the final stage of global thermalization. We find that the entropy production is dominated for most times by microscopic deviations from thermality in the baths and the correlation between (but not inside) the baths. Despite these microscopic deviations from thermality, the temperatures and chemical potentials of the baths thermalize as expected, even though our model is integrable. Importantly, this observation is confirmed for both initially mixed and pure states. We further observe that the bath-bath correlations are quite insensitive to the system-bath coupling strength contrary to intuition. Finally, the system-bath correlation, small in an absolute sense, dominates in a relative sense and displays pure quantum correlations for all studied parameter regimes.
Funder
Scholarships of Minister of Science and Higher Education
FEDER funds
Agencia Estatal de Investigación and the Ministerio de Ciencia e Innovación
Spanish MCIN with funding from European Union NextGenerationEU
Spanish MINECO
the Generalitat de Catalunya
“la Caixa” Foundation
European Commission QuantERA grant ExTRaQT
FQXi foundation project
National Science Centre, Poland
Maria de Maeztu project