| Literature DB >> 30999465 |
Huan Liu1, Chen Wang1, Lu-Qing Wang2, Jie Ren2.
Abstract
Quantum heat transfer is analyzed in nonequilibrium two-qubits systems by applying the nonequilibrium polaron-transformed Redfield equation combined with full counting statistics. Steady-state heat currents with weak and strong qubit-bath couplings are clearly unified. Within the two-terminal setup, the negative differential thermal conductance is unraveled with strong qubit-bath coupling and finite qubit splitting energy. The partially strong spin-boson interaction is sufficient to show the negative differential thermal conductance. Based on the three-terminal setup, in which two qubits are asymmetrically coupled to three thermal baths, a giant heat amplification factor is observed with strong qubit-bath coupling. Moreover, the strong interaction of either the left or right spin-boson coupling is able to exhibit the apparent heat amplification effect.Year: 2019 PMID: 30999465 DOI: 10.1103/PhysRevE.99.032114
Source DB: PubMed Journal: Phys Rev E ISSN: 2470-0045 Impact factor: 2.529