Publications by authors named "R Aboushelbaya"

Article Synopsis
  • Global investments in multi-petawatt class laser facilities are increasing, primarily to create high-quality, low-emittance electron bunches.
  • The study examines how a high-intensity femtosecond laser interacts with a limited mass dense target to generate MeV attosecond electron bunches, confirming their low emittance and charge via 3D simulations.
  • Findings indicate that electron bunch energies and laser pulse energy absorption can be effectively quantified through the Zero Vector Potential mechanism, which may significantly impact future particle accelerator technologies.
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The generation of low emittance electron beams from laser-driven wakefields is crucial for the development of compact x-ray sources. Here, we show new results for the injection and acceleration of quasimonoenergetic electron beams in low amplitude wakefields experimentally and using simulations. This is achieved by using two laser pulses decoupling the wakefield generation from the electron trapping via ionization injection.

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Wetted-foam layers are of significant interest for inertial-confinement-fusion capsules, due to the control they provide over the convergence ratio of the implosion and the opportunity this affords to minimize hydrodynamic instability growth. However, the equation of state for fusion-relevant foams are not well characterized, and many simulations rely on modeling such foams as a homogeneous medium with the foam average density. To address this issue, an experiment was performed using the VULCAN Nd:glass laser at the Central Laser Facility.

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A paradigm shift in the physics of laser-plasma interactions is approaching with the commissioning of multipetawatt laser facilities worldwide. Radiation reaction processes will result in the onset of electron-positron pair cascades and, with that, the absorption and partitioning of the incident laser energy, as well as the energy transport throughout the irradiated targets. To accurately quantify these effects, one must know the focused intensity on target in situ.

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The study of parametric instabilities has played a crucial role in understanding energy transfer to plasma and, with that, the development of key applications such as inertial confinement fusion. When the densities are between 0.11n_{c}≲n_{e}≲0.

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