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Quantum Thermodynamics
Particle injection into a chain: decoherence versus relaxation for Hermitian and non-Hermitian dynamics
arXiv
Authors: F. Gebhard, K. zu Muenster, J. Ren, N. Sedlmayr, J. Sirker, B. Ziebarth
Year
2011
Paper ID
29064
Status
Preprint
Abstract Read
~2 min
Abstract Words
131
Citations
N/A
Abstract
We investigate a model system for the injection of fermionic particles from filled source sites into an empty chain. We study the ensuing dynamics for Hermitian as well as for non-Hermitian time evolution where the particles cannot return to the bath sites (quantum ratchet). A non-homogeneous hybridization between bath and chain sites permits transient currents in the chain. Non-interacting particles show decoherence in the thermodynamic limit: the average particle number and the average current density in the chain become stationary for long times, whereas the single-particle density matrix displays large fluctuations around its mean value. Using the numerical time-dependent density-matrix renormalization group (t-DMRG) method we demonstrate, on the other hand, that sizable density-density interactions between the particles introduce relaxation which is by orders of magnitudes faster than the decoherence processes.
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- This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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- We investigate a model system for the injection of fermionic particles from filled source sites into an empty chain.
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