Nanophotonics for pair production
arXiv:2301.07377 · doi:10.1038/s41467-023-43701-5
Abstract
The transformation of electromagnetic energy into matter represents a fascinating prediction of relativistic quantum electrodynamics that is paradigmatically exemplified by the creation of electron-positron pairs out of light. However, this phenomenon has a very low probability, so positron sources rely instead on beta decay, which demands elaborate monochromatization and trapping schemes to achieve high-quality beams. Here, we propose to use intense, strongly confined optical near fields supported by a nanostructured material in combination with high-energy photons to create electron-positron pairs. Specifically, we show that the interaction between near-threshold gamma-rays and polaritons yields higher pair-production cross sections, largely exceeding those associated with free-space photons. Our work opens an unexplored avenue toward generating tunable pulsed positrons at the intersection between particle physics and nanophotonics.
15 pages, 6 figures, 55 references
References in corpus (8)
- Measurement of the optical dielectric function of transition metal dichalcogenide monolayers: MoS2, MoSe2, WS2 and WSe2
- Graphene Plasmonics: Challenges and Opportunities
- Infrared hyperbolic metasurface based on nanostructured van der Waals materials
- Positron-molecule interactions: resonant attachment, annihilation, and bound states
- Plasmonics in Atomically-Thin Crystalline Silver Films
- Constraints on the emission region of 3C 279 during strong flares in 2014 and 2015 through VHE gamma-ray observations with H.E.S.S
- The Effect of Pair Cascades on the High-Energy Spectral Cutoff in Gamma-Ray Bursts
- Electron-positron pair production by gamma rays in an anisotropic flux of soft photons, and application to pulsar polar caps