Transient behavior of heat transport in a thermal switch
arXiv:0910.4813 · doi:10.1103/PhysRevB.81.052302
Abstract
We study the time-dependent transport of heat in a nanoscale thermal switch. The switch consists of left and right leads that are initially uncoupled. During switch-on the coupling between the leads is abruptly turned on. We use the nonequilibrium Green's function formalism and numerically solve the constructed Dyson equation to determine the nonperturbative heat current. At the transient regime we find that the current initially flows simultaneously into both of the leads and then afterwards oscillates between flowing into and out of the leads. At later times the oscillations decay away and the current settles into flowing from the hotter to the colder lead. We find the transient behavior to be influenced by the extra energy added during switch-on. Such a transient behavior also exists even when there is no temperature difference between the leads. The current at the long-time limit approaches the steady-state value independently calculated from the Landauer formula.
version accepted for publication in PRB
References in corpus (4)
Cited by in corpus (19)
- Phononics: Manipulating heat flow with electronic analogs and beyond
- Nonequilibrium Green's function method for quantum thermal transport
- Enhanced thermopower under time-dependent gate voltage
- Counting statistics of heat transport in harmonic junctions -- transient and steady states
- A many-body approach to transport in quantum systems: From the transient regime to the stationary state
- Phononic heat transport in the transient regime: An analytic solution
- Thermal engineering in low-dimensional quantum devices: a tutorial review of nonequilibrium Green's function methods
- Transient behavior of full counting statistics in thermal transport
- Tunable heat pump by modulating the coupling to the leads
- Time-dependent Andreev bound states of a quantum dot coupled to two superconducting leads
- Heat transfer statistics in mixed quantum-classical systems
- Exchange fluctuation theorem for heat transport between multi-terminal harmonic systems
- Role of the on-site pinning potential in establishing quasi-steady-state conditions of heat transport in finite quantum systems
- Time-Dependent Thermopower Effect in an Interacting Quantum Dot
- Heat generation and transport due to time-dependent forces
- Time-dependent quantum transport and power-law decay of the transient current in a nano-relay and nano-oscillator
- Transient spin current under a thermal switch
- Frequency thermal response and cooling performance in a microscopic system with a time-dependent perturbation
- Attenuation and amplification of the transient current in nanojunctions with time-varying gate potentials