Jaynes-Cummings Models with trapped electrons on liquid Helium
arXiv:0909.0088 · doi:10.1103/PhysRevA.80.055801
Abstract
Jaynes-Cummings model is a typical model in quantum optics and has been realized with various physical systems (e.g, cavity QED, trapped ions, and circuit QED etc..) of two-level atoms interacting with quantized bosonic fields. Here, we propose a new implementation of this model by using a single classical laser beam to drive an electron floating on liquid Helium. Two lowest levels of the {\it vertical} motion of the electron acts as a two-level "atom", and the quantized vibration of the electron along one of the {\it parallel} directions, e.g., -direction, serves the bosonic mode. These two degrees of freedom of the trapped electron can be coupled together by using a classical laser field. If the frequencies of the applied laser fields are properly set, the desirable Jaynes-Cummings models could be effectively realized.
9 pages, 2 figures
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Cited by in corpus (5)
- Proposal for manipulating and detecting spin and orbital states of trapped electrons on helium using cavity quantum electrodynamics
- Cavity Quantum Electrodynamics with a Rydberg blocked atomic ensemble
- Coulomb interaction-driven entanglement of electrons on helium
- Spin-orbit couplings between distant electrons trapped individually on liquid helium
- Jaynes-Cummings Models with trapped surface-state electrons in THz cavities