Time-dependent quantum transport and power-law decay of the transient current in a nano-relay and nano-oscillator
arXiv:1104.3977 · doi:10.1063/1.3651390
Abstract
Time-dependent nonequilibrium Green's functions are used to study electron transport properties in a device consisting of two linear chain leads and a time-dependent interleads coupling that is switched on non-adiabatically. We derive a numerically exact expression for the particle current and examine its characteristics as it evolves in time from the transient regime to the long-time steady-state regime. We find that just after switch-on the current initially overshoots the expected long-time steady-state value, oscillates and decays as a power law, and eventually settles to a steady-state value consistent with the value calculated using the Landauer formula. The power-law parameters depend on the values of the applied bias voltage, the strength of the couplings, and the speed of the switch-on. In particular, the oscillating transient current decays away longer for lower bias voltages. Furthermore, the power-law decay nature of the current suggests an equivalent series resistor-inductor-capacitor circuit wherein all of the components have time-dependent properties. Such dynamical resistive, inductive, and capacitive influences are generic in nano-circuites where dynamical switches are incorporated. We also examine the characteristics of the dynamical current in a nano-oscillator modeled by introducing a sinusoidally modulated interleads coupling between the two leads. We find that the current does not strictly follow the sinusoidal form of the coupling. In particular, the maximum current does not occur during times when the leads are exactly aligned. Instead, the times when the maximum current occurs depend on the values of the bias potential, nearest-neighbor coupling, and the interleads coupling.
version accepted for publication in JAP
References in corpus (14)
- Driven quantum transport on the nanoscale
- Kadanoff-Baym approach to quantum transport through interacting nanoscale systems: From the transient to the steady-state regime
- Dictionary between scattering matrix and Keldysh formalisms for quantum transport driven by time-periodic fields
- Approach to steady state transport in nanoscale conductors
- Relaxation vs decoherence: Spin and current dynamics in the anisotropic Kondo model at finite bias and magnetic field
- Non-equilibrium current and relaxation dynamics of a charge-fluctuating quantum dot
- Transient regime in non-linear transport through many-level quantum dots
- Time-Dependent Transport Through Molecular Junctions
- First-principles investigation of dynamical properties of molecular devices under a steplike pulse
- Self-consistent ac quantum transport using nonequilibrium Green functions
- Transient fluctuation relations for time-dependent particle transport
- Transient behavior of heat transport in a thermal switch
- Transient dynamics of molecular devices under step-like pulse bias
- Tunable heat pump by modulating the coupling to the leads
Cited by in corpus (5)
- Numerical simulations of time resolved quantum electronics
- Image charge dynamics in time-dependent quantum transport
- Exchange fluctuation theorem for heat transport between multi-terminal harmonic systems
- Attenuation and amplification of the transient current in nanojunctions with time-varying gate potentials
- Dynamics of electron currents in nanojunctions with time-varying components and interactions