Single Plasmon Switching with n Quantum Dots System Coupled to One-Dimentional Waveguide
arXiv:1307.5643 · doi:10.1007/s11468-014-9846-5
Abstract
Switching of a single plasmon interacting with equally spaced quantum dots coupled to one-dimensional surface plasmonic waveguide is investigated theoretically via the real-space approach. We showed that the transmission and reflection of a single plasmon can be switched on or off by dynamically tuning and changing the number of the equal transition frequencies of the quantum dots.
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Cited by in corpus (8)
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- Transparency in a periodic chain of quantum emitters strongly coupled to a waveguide
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- Entanglement of Two Quantum Dots with the Flip-Flop Interaction coupled to Plasmonic Waveguide
- Influence of Impurity on the Rate of Single Photon Superradiance in Disordered N Qubit Chain
- Feasible Surface Plasmon Routing Based on The Self-assembled InGaAs/GaAs Semiconductor Quantum Dot Located between Two Silver Metallic Waveguides