Kaluza-Klein theory of electron-plasmon interaction in a thin cylindrical wire
arXiv:cond-mat/0211190 · doi:10.1103/PhysRevB.67.165406
Abstract
Electron-plasmon interaction in a thin cylindrical wire is described in terms of four-dimensional Kaluza-Klein theory in which angular coordinate of the metal cylinder is considered to be one of the two compactified coordinates. In this model electron-electron, electron-plasmon and nonlinear optical plasmon-plasmon interactions are unified via introduction of effective superchiral charges and fields. Such an approach has important consequences for description of electromagnetic and transport properties of mesoscopic metallic wires and rings at low temperatures, such as recent observation of density-dependent spin polarization in quantum wires. This theory may be consistently reformulated using normal language of classical physics as nonlinear electrodynamics of a rotating medium.
4 pages
References in corpus (7)
- Plasmon-assisted Quantum Entanglement
- Density dependent spin polarisation in ultra low-disorder quantum wires
- Single-photon tunneling
- Diamagnetic orbital response of mesoscopic silver rings
- Optical control of photon tunneling through an array of nanometer scale cylindrical channels
- Anomalous Conductance Distribution in Quasi-One Dimension: Possible Violation of One-Parameter Scaling Hypothesis
- Fractal extra dimension in Kaluza-Klein theory
Cited by in corpus (7)
- Surface plasmon toy-model of a rotating black hole
- Metamaterial "Multiverse"
- Holographic duality in nonlinear hyperbolic metamaterials
- Magnetic light
- Dephasing of electrons in mesoscopic metal wires due to zero-point fluctuations of optically active localized plasmon modes
- Long-range Coulomb-like mode interaction in a coaxial waveguide filled with Faraday material
- Vacuum diamagnetism of mesoscopic metallic samples