4.7 Article

Spatio-temporal coupling controlled laser for electron acceleration

Journal

COMMUNICATIONS PHYSICS
Volume 5, Issue 1, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s42005-022-00954-8

Keywords

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Funding

  1. Gordon and Betty Moore Foundation [GBMF4744]
  2. German Federal Ministry of Education and Research [05K19RDE]
  3. LOEWE Exploration
  4. National Natural Science Foundation of China [12174255]

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Limited by acceleration synchronization difficulty, bridging the gap between non-relativistic and relativistic regimes has been a long-term challenge for on-chip dielectric laser-based accelerators. In this study, a laser-based accelerator scheme controlled by spatio-temporal coupling controlled laser pulses is proposed, allowing for acceleration of non-relativistic electrons to sub-MeV levels in a single acceleration structure. The scheme provides high precision temporal and spatial tuning of the driving laser and can potentially be extended to other wavelengths.
Limited by the difficulty in acceleration synchronization, it has been a long-term challenge for on-chip dielectric laser-based accelerators to bridge the gap between non-relativistic and relativistic regimes. Here, we propose a laser-based accelerators based on a spatio-temporal coupling controlled laser pulse, which enables the acceleration of a non-relativistic electron to a sub-MeV level in a single acceleration structure (chirped spatial grating). It provides high precision temporal and spatial tuning of the driving laser via dispersion manipulation, leading to a synchronous acceleration of the velocity increasing electrons over a large energy range. Additionally, the spatio-temporal coupling scheme is a general method and can be extended to driving fields of other wavelengths such as terahertz pulses. Our results bring possibilities to MeV-scale portable electron sources and table-top acceleration experiments. A long-standing challenge for on-chip dielectric laser-based accelerators is to bridge the gap between nonrelativistic and relativistic regimes. Here, an all-optical acceleration scheme is proposed that maximises the electron-field interaction length, and hence the acceleration, by spatio-temporal pulse shaping.

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