Published March 2016 | Version v1
Journal article

Extending laser plasma accelerators into the mid-IR spectral domain with a next-generation ultra-fast CO2 laser

  • 1. Accelerator Test Facility, Collider Accelerator Dept., Brookhaven National Laboratory, Upton, NY 11973 (United States)
  • 2. The John Adams Institute for Accelerator Science, Blackett Laboratory, Imperial College London SW7 2AZ (United Kingdom)
  • 3. Accelerator laboratory, Tsinghua Univ., Beijing 100080 (China)
  • 4. Stony Brook University, Stony Brook, NY 11794 (United States)
  • 5. Naval Research Laboratory, Washington, DC 20375 (United States)

Description

Expanding the scope of relativistic plasma research to wavelengths longer than the λ/≈   0.8–1.1 μm range covered by conventional mode-locked solid-state lasers would offer attractive opportunities due to the quadratic scaling of the ponderomotive electron energy and critical plasma density with λ. Answering this quest, a next-generation mid-IR laser project is being advanced at the BNL ATF as a part of the user facility upgrade. We discuss the technical approach to this conceptually new 100 TW, 100 fs, λ  =   9–11 μm CO2 laser BESTIA (Brookhaven Experimental Supra-Terawatt Infrared at ATF) that encompasses several innovations applied for the first time to molecular gas lasers. BESTIA will enable new regimes of laser plasma accelerators. One example is shock-wave ion acceleration (SWA) from gas jets. We review ongoing efforts to achieve stable, monoenergetic proton acceleration by dynamically shaping the plasma density profile from a hydrogen gas target with laser-produced blast waves. At its full power, 100 TW BESTIA promises to achieve proton beams at an energy exceeding 200 MeV. In addition to ion acceleration in over-critical plasma, the ultra-intense mid-IR BESTIA will open up new opportunities in driving wakefields in tenuous plasmas, expanding the landscape of laser wakefield accelerator (LWFA) studies into the unexplored long-wavelength spectral domain. Simple wavelength scaling suggests that a 100 TW CO2 laser beam will be capable of efficiently generating plasma 'bubbles' a thousand times greater in volume compared with a near-IR solid state laser of an equivalent power. Combined with a femtosecond electron linac available at the ATF, this wavelength scaling will facilitate the study of external seeding and staging of LWFAs. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/0741-3335/58/3/034003

Additional details

Publishing Information

Journal Title
Plasma Physics and Controlled Fusion
Journal Volume
58
Journal Issue
3
Journal Page Range
[7 p.]
ISSN
0741-3335
CODEN
PPCFET