Ultra-high intensity

Ultra-high intensity lasers concentrate femtosecond pulses to intensities where matter itself becomes plasma. The applications span plasma physics, fusion research, atomic, molecular and optical physics, femtosecond chemistry, astrophysics, high-energy physics, materials science, medicine and biology.

Ultra-high intensity applications

At the focus of an ultra-high intensity laser, the electric field exceeds the field that binds electrons to atoms: the target turns into plasma, and electrons within it are driven to relativistic energies. Ultra-high intensity laser systems deliver this regime with terawatt peak powers, few-cycle pulse durations and kilohertz repetition rates.

Areas where a strong impact is possible include:

  • High harmonic generation and attosecond science
  • Relativistic effects in interactions with atoms, molecules and electrons
  • Ultrafast X-ray science
  • High energy density science
  • Fusion energy research
  • Particle accelerators
  • Thomson scattering

Systems of this class already power several of these fields. At ELI ALPS, the SYLOS 3 laser, built by EKSPLA and Light Conversion, delivers 15 TW pulses of 8 fs duration at a 1 kHz repetition rate for attosecond and electron-acceleration experiments. At ELI Beamlines, the L4 ATON laser, developed by National Energetics and EKSPLA, compressed 786 J into 154 fs to reach 5.1 PW. Q-switched Nd:YAG lasers measure the electron temperature and density of fusion plasmas by Thomson scattering and drive compact EUV and soft X-ray sources.

UltraFlux FF.