Entangling free electrons and optical excitations
arXiv:2202.00604 · doi:10.1126/sciadv.abo7853
Abstract
The inelastic interaction between flying particles and optical nanocavities gives rise to entangled states in which some excitations of the latter are paired with changes in the energy or momentum of the former. In particular, entanglement of free electrons and nanocavity modes opens appealing opportunities associated with the strong interaction capabilities of the electrons. However, the degree of entanglement that is currently achievable by electron interaction with optical cavities is severely limited by the lack of external selectivity over the resulting state mixtures. Here, we propose a scheme to generate pure entanglement between designated optical excitations in a cavity and separable free-electron states. Specifically, we shape the electron wave-function profile to dramatically reduce the number of accessible cavity modes and simultaneously associate them with targeted electron scattering directions. We exemplify this concept through a theoretical description of free-electron entanglement with degenerate and nondegenerate plasmon modes in silver nanoparticles as well as atomic vibrations in an inorganic molecule. The generated entanglement can be further propagated through its electron component to extend quantum interactions beyond currently explored protocols.
9 pages, 4 figures, 85 references
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- Optical Modulation of Electron Beams in Free Space
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Cited by in corpus (9)
- Cavity-mediated electron-photon pairs
- Coulomb-correlated electron number states in a transmission electron microscope beam
- Time-correlated electron and photon counting microscopy
- Generation of entangled waveguided photon pairs by free electrons
- Quantum eraser experiments for the demonstration of entanglement between swift electrons and light
- Transverse Recoil Imprinted on Free-Electron Radiation
- Quantum Nanophotonics with Energetic Particles:X-rays and Free Electrons
- A quantum logic gate for free electrons
- State-Agnostic Approach to Certifying Electron-Photon Entanglement in Electron Microscopy