Matthias Fuchs (Karlsruhe Institute of Technology)
SUPG047
Commissioning and experiments with a compact transverse deflecting system at FLUTE
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A Compact Transverse Deflecting System (Compact-TDS) designed for longitudinal electron bunch diagnostics in the femtosecond regime is presently undergoing commissioning at the Karlsruhe Institute of Technology (KIT). This technique, based on THz streaking using a resonator structure, demands a high level of electron beam controllability and stability at the micrometer scale. To meet these requirements, the linear accelerator FLUTE (Ferninfrarot Linac- Und Test-Experiment) has undergone major upgrades in 2023, incorporating a new RF system equipped with a klystron, RF photoinjector and solenoid magnet. In this contribution, we present first experiments conducted with the Compact-TDS at FLUTE, utilizing the upgraded RF setup.
  • M. Nabinger, A. Mueller, A. Malygin, E. Bruendermann, J. Schaefer, J. Steinmann, K. Mayer, M. Noll, M. Fuchs, M. Nasse, R. Ruprecht, T. Schmelzer
    Karlsruhe Institute of Technology
  • M. Laabs
    Dresden Institute of Technology
  • M. Moser, M. Dehler, R. Ischebeck, V. Schlott
    Paul Scherrer Institut
  • M. Hayati, T. Feurer, Z. Ollmann
    Universität Bern
  • N. Smale
    Karlsruhe Instutute of Technology
  • O. Boine-Frankenheim
    Technische Universität Darmstadt
  • S. Glukhov
    Technische Universitaet Darmstadt
DOI: reference for this paper: 10.18429/JACoW-IPAC2024-WEPG52
About:  Received: 14 May 2024 — Revised: 20 May 2024 — Accepted: 23 May 2024 — Issue date: 01 Jul 2024
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
MOPR44
Laser-plasma injector for an electron storage ring
557
Laser-plasma accelerators (LPAs) are compact accelerators with field gradients that are approximately 3 orders of magnitude higher than RF-based machines, which allows for very compact accelerators. LPAs have matured from proof-of principle experiments to accelerators that can reproducibly generate ultrashort high-brightness electron bunches. Here we will discuss a first combination of LPAs with an electron storage ring, namely an LPA-based injector for the cSTART ring at the Karlsruher Institute of Technology (KIT). The cSTART ring is currently in the final design phase. It will accept electron bunches with an energy of 50 MeV and will have a large energy acceptance to accommodate the comparably large energy spread of LPA-generated electron beams. The LPA will be required to reproducibly and reliably generate 50 MeV electron bunches with few percent energy spread. To that end, different controlled electron injection methods into the plasma accelerating structure, tailored plasma densities are explored and beam transfer lines to tailor the beam properties are designed.
  • N. Ray, D. Squires, A. Saw, J. Natal, B. Haerer, A. Mueller, M. Fuchs
    Karlsruhe Institute of Technology
  • M. Kirchen
    Deutsches Elektronen-Synchrotron
  • S. Jalas, P. Messner
    University of Hamburg
  • C. Werle
    Centre for Free Electron Laser Science
Paper: MOPR44
DOI: reference for this paper: 10.18429/JACoW-IPAC2024-MOPR44
About:  Received: 15 May 2024 — Revised: 20 May 2024 — Accepted: 20 May 2024 — Issue date: 01 Jul 2024
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
TUBN2
Next-generation laser-plasma acceleration
Most current laser-plasma accelerators (LPAs) require driver lasers with relativistic intensities and pulse durations that are significantly shorter than the plasma wavelengths. This severely limits the laser technology that can be used to drive LPAs and with that their wide spread and the currently achievable LPA parameters, such as repetition rate and accelerating gradient. Here, we report a widely unexplored regime of laser-plasma electron acceleration that is based on the direct parametric excitation of plasma waves. This method markedly relaxes the driver laser requirements in terms of peak power and pulse duration. We show experimental data that demonstrates the generation of high-charge mildly relativistic electron bunches with laser-to-electron conversion efficiency that is unprecedented in gas-phase targets. The accelerating field gradient in this regime reach 3 TV/m. The experimental results demonstrate a novel regime that opens LPA electron acceleration for a wide range of driver laser technologies and holds the promise for a path to ultracompact high-repetition rate LPAs with extreme field gradients for future compact particle accelerators and secondary sources.
  • M. Fuchs, A. Saw, D. Squires, J. Natal, N. Ray
    Karlsruhe Institute of Technology
  • T. Hu
    University of Nebraska - Lincoln
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TUPC82
Advanced laser-driven betatron X-ray generation
Ultrafast high-brightness X-ray pulses have proven invaluable for a broad range of research. Such pulses are typically generated via synchrotron emission from relativistic electron bunches. Recently, compact X-ray sources based on laser-wakefield accelerated (LWFA) electron beams have been demonstrated, where the radiation is generated by transverse betatron oscillations of electrons within the plasma accelerator structure. Here, we present a novel method for enhancement of and control over the parameters of LWFA-driven betatron X-ray emission. We realize this through specific manipulation of the electron bunch phase-space using our novel Transverse Oscillating Bubble Enhanced Betatron Radiation (TOBER) scheme. The phase space is controlled through the orchestrated evolution of the temporal laser pulse shape and the accelerating plasma structure, which leads to off-axis electron injection and large-amplitude transverse betatron oscillation, resulting in enhanced X-ray emission. TOBER holds the promise of compact sources that can generate X-rays with optimized parameters for specific applications using the same setup beams with even higher peak and average brilliance.
  • D. Squires, A. Saw, J. Natal, M. Fuchs, N. Ray
    Karlsruhe Institute of Technology
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WEPG52
Commissioning and experiments with a compact transverse deflecting system at FLUTE
2339
A Compact Transverse Deflecting System (Compact-TDS) designed for longitudinal electron bunch diagnostics in the femtosecond regime is presently undergoing commissioning at the Karlsruhe Institute of Technology (KIT). This technique, based on THz streaking using a resonator structure, demands a high level of electron beam controllability and stability at the micrometer scale. To meet these requirements, the linear accelerator FLUTE (Ferninfrarot Linac- Und Test-Experiment) has undergone major upgrades in 2023, incorporating a new RF system equipped with a klystron, RF photoinjector and solenoid magnet. In this contribution, we present first experiments conducted with the Compact-TDS at FLUTE, utilizing the upgraded RF setup.
  • M. Nabinger, A. Mueller, A. Malygin, E. Bruendermann, J. Schaefer, J. Steinmann, K. Mayer, M. Noll, M. Fuchs, M. Nasse, R. Ruprecht, T. Schmelzer
    Karlsruhe Institute of Technology
  • M. Laabs
    Dresden Institute of Technology
  • M. Moser, M. Dehler, R. Ischebeck, V. Schlott
    Paul Scherrer Institut
  • M. Hayati, T. Feurer, Z. Ollmann
    Universität Bern
  • N. Smale
    Karlsruhe Instutute of Technology
  • O. Boine-Frankenheim
    Technische Universität Darmstadt
  • S. Glukhov
    Technische Universitaet Darmstadt
Paper: WEPG52
DOI: reference for this paper: 10.18429/JACoW-IPAC2024-WEPG52
About:  Received: 14 May 2024 — Revised: 20 May 2024 — Accepted: 23 May 2024 — Issue date: 01 Jul 2024
Cite: reference for this paper using: BibTeX, LaTeX, Text/Word, RIS, EndNote
THPC27
Quasi-isochronous conditions and high order terms of momentum compaction factor at the compact storage ring
3039
The compact storage ring project for accelerator research and technology (cSTART) is realized at the Institute for Beam Physics and Technology (IBPT) of the Karlsruhe Institute of Technology (KIT). Flexible lattice of a ring benefits variety of operation modes. Different physical experiments are planned at cSTART. In particular, deep variation of momentum compaction factor with simultaneous control of high order terms of alpha would demonstrate the capture and storage of ultra-short bunches of electrons in a circular accelerator. Computer studies of linear and non-linear beam dynamics were performed with an objective to estimate arrangement and performance of dedicated three pole chicane magnets to provide quasi-isochronous conditions for electrons. Additional families of so called “longitudinal” sextupoles and octupoles were added in a ring model to control slope and curvature of momentum compaction factor as function of energy offset of particles in a bunch.
  • A. Papash, M. Fuchs, A. Mueller, R. Ruprecht
    Karlsruhe Institute of Technology
Paper: THPC27
DOI: reference for this paper: 10.18429/JACoW-IPAC2024-THPC27
About:  Received: 03 May 2024 — Revised: 20 May 2024 — Accepted: 22 May 2024 — Issue date: 01 Jul 2024
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