Exact solutions for the electromagnetic fields of a flying focus
arXiv:2210.07947 · doi:10.1103/PhysRevA.107.013513
Abstract
The intensity peak of a "flying focus" travels at a programmable velocity over many Rayleigh ranges while maintaining a near-constant profile. Assessing the extent to which these features can enhance laser-based applications requires an accurate description of the electromagnetic fields. Here we present exact analytical solutions to Maxwell's equations for the electromagnetic fields of a constant-velocity flying focus, generalized for arbitrary polarization and orbital angular momentum. The approach combines the complex source-point method, which transforms multipole solutions into beam-like solutions, with the Lorentz invariance of Maxwell's equations. Propagating the fields backward in space reveals the space-time profile that an optical assembly must produce to realize these fields in the laboratory. Comparisons with simpler paraxial solutions provide conditions for their reliable use when modeling a flying focus.
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Cited by in corpus (10)
- Laser wakefield acceleration of ions with a transverse flying focus
- Signatures of vacuum birefringence in low-power flying focus pulses
- Strong-field vacuum polarisation with high energy lasers
- Relativistic transformations of quasi-monochromatic optical beams
- Charged particle beam transport in a flying focus pulse with orbital angular momentum
- First direct observation of a wakefield generated with structured light
- Enhanced quantum radiation with flying-focus laser pulses
- High-charge relativistic electrons by vacuum laser acceleration from plasma mirrors using flying focus pulses
- Bending space-time wave packets
- Simulation Design for Velocity-Controlled Spatio-Temporal Drivers in Laser Wakefield Acceleration