Cavity-modified quantum electron transport in multi-terminal devices and interferometers
arXiv:2412.06721 · doi:10.1103/4l6d-gqkw
Abstract
We theoretically investigate transport affected by cavity-mediated electron hopping in multi-terminal quantum Hall bars, quantum point contacts, and Aharonov-Bohm interferometers. Beyond determining conductances and resistances, we analyze spatially resolved current distributions and local density of states. Our study reveals how cavity-mediated inter-edge scattering impacts quantum magnetotransport in finite-size systems and how the cavity-mediated hopping significantly alters electron quantum interference effects.
12 pages, 11 figures
References in corpus (17)
- Strongly-Correlated Electron-Photon Systems
- Cavity-mediated thermal control of metal-to-insulator transition in 1T-TaS
- Spatial distribution of local currents of massless Dirac fermions in quantum transport through graphene nanoribbons
- Enhanced fractional quantum Hall gaps in a two-dimensional electron gas coupled to a hovering split-ring resonator
- Quantum electron transport controlled by cavity vacuum fields
- Cavity Quantum Electrodynamics with Hyperbolic van der Waals Materials
- Weakened Topological Protection of the Quantum Hall Effect in a Cavity
- Electron-photon Chern number in cavity-embedded 2D moiré materials
- Cavity Induced Topology in Graphene
- Cavity-enhanced superconductivity via band engineering
- Topological protection of Majorana polaritons in a cavity
- Remote gate control of topological transitions in moiré superlattices via cavity vacuum fields
- Coherent interaction of a-few-electron quantum dot with a terahertz optical resonator
- Emergent Haldane Model and Photon-Valley Locking in Chiral Cavities
- From edge to bulk: Cavity induced displacement of topological non-local qubits
- Electron conductance and many-body marker of a cavity-embedded topological 1D chain
- Light-matter correlations in Quantum Floquet engineering of cavity quantum materials