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Arbitrary-velocity laser pulses in plasma waveguides

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arxiv 2503.15690 v1 pith:A5JYLRQW submitted 2025-03-19 physics.plasm-ph physics.optics

classification physics.plasm-phphysics.optics
keywords laserpulseswaveguideintensityplasmaaccelerationarbitrary-velocitycorrelated
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Space-time structured laser pulses feature an intensity peak that can travel at an arbitrary velocity while maintaining a near-constant profile. These pulses can propagate in uniform media, where their frequencies are correlated with continuous transverse wavevectors, or in structured media, such as a waveguide, where their frequencies are correlated with discrete mode numbers. Here, we demonstrate the formation and propagation of arbitrary-velocity laser pulses in a plasma waveguide where the intensity can be orders of magnitude higher than in a solid-state waveguide. The flexibility to control the velocity of the peak intensity in a plasma waveguide enables new configurations for plasma-based sources of radiation and energetic particles, including THz generation, laser wakefield acceleration, and direct laser acceleration.

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Cited by 2 Pith papers

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  1. Ultra-strong Quantum Squeezing Mediated by Plasma Waves

    physics.plasm-ph 2025-07 conditional novelty 6.0 of 10

    Stimulated Raman scattering in a plasma is predicted to produce two-mode squeezed light with over 40 dB noise reduction at high photon numbers despite thermal phonon noise.

  2. Path to a Single-Stage, 100-GeV Electron Beam via a Flying-Focus-Driven Laser-Plasma Accelerator

    physics.plasm-ph 2025-04 conditional novelty 4.0 of 10

    Flying-focus-driven dephasingless laser wakefield acceleration is projected to produce a single-stage 100-GeV electron beam on the proposed NSF OPAL laser, based on new scaling laws, hydrogen-gas PIC simulations, and ...

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