Full-counting statistics of transient energy current in mesoscopic systems
arXiv:1706.07182 · doi:10.1103/PhysRevB.93.195419
Abstract
We investigate the full-counting statistics (FCS) of energy flow carried by electrons in the transient regime. Based on two measurement scheme we formulate a non-equilibrium Keldysh Green's function theory to compute the generating function for FCS of energy transport. Specifically, we express the generating function using the path integral along Keldysh contour and obtain exact solution of the generating function using the Grassmann algebra. With this formalism, we calculate the transient energy current and higher order cumulants for both single and double quantum dot (QD) systems in the transient regime. To examine finite bandwidth effect of leads to FCS of energy transport, we have used an exact solvable model with a Lorentizian linewidth where all non-equilibrium Green's functions can be solved exactly in the time domain. It is found that the transient energy current exhibits damped oscillatory behavior. For the single quantum dot system the frequency of oscillation is independent of bandwidth of the leads while the decay rate of the oscillation amplitude is determined by the lifetime of resonant state which increases as the bandwidth decreases. At short times, a universal scaling of maximum amplitude of normalized cumulants is identified for the single QD system. For the double QD system, the damped oscillation of energy current is dominated by Rabi oscillation with frequency approximately proportional to the coupling constant between two quantum dots. In general, the transient energy current increases when the coupling between two QDs is stronger. However, when the interdot coupling is larger than half of the external bias the transient energy current is suppressed significantly. All these results can be understood analytically.
References in corpus (10)
- Quantum Noise as an Entanglement Meter
- Universal oscillations in counting statistics
- Counting Statistics of Non-Markovian Quantum Stochastic Processes
- Symmetry in Full Counting Statistics, Fluctuation Theorem, and Relations among Nonlinear Transport Coefficients in the Presence of a Magnetic Field
- Entanglement from Charge Statistics: Exact Relations for Many-Body Systems
- Full counting statistics for noninteracting fermions: Exact results and the Levitov-Lesovik formula
- Full-counting statistics of charge and spin transport in the transient regime: A nonequilibrium Green's function approach
- Nonlinear effects of phonon fluctuations on transport through nanoscale junctions
- Quantum heat fluctuations of single particle sources
- Cumulant generating function formula of heat transfer in ballistic system with lead-lead coupling
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