4.2 Article

Multi-pulse laser wakefield acceleration: a new route to efficient, high-repetition-rate plasma accelerators and high flux radiation sources

出版社

IOP PUBLISHING LTD
DOI: 10.1088/0953-4075/47/23/234003

关键词

plasma accelerator; x-ray; radiation source; free-electron laser

资金

  1. Engineering and Physical Sciences Research Council [EP/H011145/1]
  2. Leverhulme Trust [F/08 776/G]
  3. Science and Technology Facilities Council [ST/J002011]
  4. Royal Society
  5. Air Force Office of Scientific Research, Air Force Material Command, USAF [FA8655-13-1-2141]
  6. Engineering and Physical Sciences Research Council [EP/I014462/1, EP/H011145/1] Funding Source: researchfish
  7. Science and Technology Facilities Council [ST/J002062/1, ST/J002011/1 John Adams Inst, ST/J002011/1, ST/K001582/1, ST/G008531/1, John Adams Institute, ST/J002062/1 John Adams Inst] Funding Source: researchfish
  8. EPSRC [EP/H011145/1, EP/I014462/1] Funding Source: UKRI
  9. STFC [ST/J002011/1, ST/J002062/1, ST/K001582/1, John Adams Institute, ST/G008531/1] Funding Source: UKRI

向作者/读者索取更多资源

Laser-driven plasma accelerators can generate accelerating gradients three orders of magnitude larger than radio-frequency accelerators and have achieved beam energies above 1 GeV in centimetre long stages. However, the pulse repetition rate and wall-plug efficiency of laser plasma accelerators is limited by the driving laser to less than approximately 1 Hz and 0.1% respectively. Here we investigate the prospects for exciting the plasma wave with trains of low-energy laser pulses rather than a single high-energy pulse. Resonantly exciting the wakefield in this way would enable the use of different technologies, such as fibre or thin-disc lasers, which are able to operate at multi-kilohertz pulse repetition rates and with wall-plug efficiencies two orders of magnitude higher than current laser systems. We outline the parameters of efficient, GeV-scale, 10 kHz plasma accelerators and show that they could drive compact x-ray sources with average photon fluxes comparable to those of third-generation light source but with significantly improved temporal resolution. Likewise free-electron laser (FEL) operation could be driven with comparable peak power but with significantly larger repetition rates than extant FELs.

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