Scattering Theory of Dynamic Electrical Transport
arXiv:cond-mat/0502229 · doi:10.1007/3-540-34273-7_5
Abstract
We have developed a scattering matrix approach to coherent transport through an adiabatically driven conductor based on photon-assisted processes. To describe the energy exchange with the pumping fields we expand the Floquet scattering matrix up to linear order in driving frequency.
Proceedings QMath9, September 12th-16th, 2004, Giens, France
References in corpus (6)
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- Enhancing single-parameter quantum charge pumping in carbon-based devices
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- Dynamic scattering channels of a double barrier structure
- Spectroscopy of electron flows with single- and two-particle emitters
- Gate driven adiabatic quantum pumping in graphene
- Interacting electrodynamics of short coherent conductors in quantum circuits
- FMR and voltage induced transport in normal metal-ferromagnet-superconductor trilayers
- Discrete changes of current statistics in periodically driven stochastic systems
- Single-parameter spin-pumping in driven metallic rings with spin-orbit coupling
- Engineering Floquet moiré patterns for scalable photocurrents