DOE OSTI · 1760577
Two-Photon Spontaneous Emission in Atomically Thin Plasmonic Nanostructures
Abstract
The ability to harness light-matter interactions at the few-photon level plays a pivotal role in quantum technologies. Single photons—the most elementary states of light—can be generated on demand in atomic and solid state emitters. Two-photon states are also key quantum assets, but achieving them in individual emitters is challenging because their generation rate is much slower than competing one-photon processes. We demonstrate that atomically thin plasmonic nanostructures can harness two-photon spontaneous emission, resulting in giant far field two-photon production, a wealth of resonant modes enabling tailored photonic and plasmonic entangled states, and plasmon-assisted single-photon creation orders of magnitude more efficient than standard one-photon emission. We unravel the two-photon spontaneous emission channels and show that their spectral line shapes emerge from an intricate interplay between Fano and Lorentzian resonances. Enhanced two-photon spontaneous emission in two-dimensional nanostructures paves the way to an alternative efficient source of light-matter entanglement for on-chip quantum information processing and free-space quantum communications.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Muniz, Y., Manjavacas, A., Farina, C., Dalvit, D. A. R., Kort-Kamp, W. J. M.. 2020-07-15. Two-Photon Spontaneous Emission in Atomically Thin Plasmonic Nanostructures. https://doi.org/10.1103/physrevlett.125.033601
Cite the original work for its findings. Save a collection to share your selection of sources.