We report an amplification-free thin-disk laser system delivering 0.9 GW peak power. The 120 fs pulses, at 14 MHz, centered around 1 µm, containing 12.8 µJ delivered by a thin-disk oscillator, were compressed by factor 15 down to 8.0 fs with 148 W average output power and overall 82% efficiency. Additionally, we showed that even a sub-two-cycle operation with 6.2 fs can be reached with this technology. The system will be a crucial part of the XUV frequency comb being developed and a unique high-repetition rate driver for attosecond pulse generation.

Download full-text PDF

Source
http://dx.doi.org/10.1364/OL.524513DOI Listing

Publication Analysis

Top Keywords

thin-disk laser
8
amplification-free gw-level
4
gw-level 150 w
4
150 w 14 mhz
4
14 mhz 8 fs
4
8 fs thin-disk
4
laser based
4
based compression
4
compression multipass
4
multipass cells
4

Similar Publications

We present the highest, to the best of our knowledge, average power from a laser-driven single-cycle THz source demonstrated so far, using optical rectification in the tilted pulse front geometry in cryogenically cooled lithium niobate, pumped by a commercially available 500 W ultrafast thin-disk ytterbium (Yb) amplifier. We study repetition rate-dependent effects in our setup at 100 and 40 kHz at this high average power, revealing different optimal fluence conditions for efficient conversion. The demonstrated sources with multi-100 mW average power at these high repetition rates combine high THz pulse energies and high repetition rate and are thus ideally suited for nonlinear THz spectroscopy experiments with significantly reduced measurement times.

View Article and Find Full Text PDF
Article Synopsis
  • - Resonant enhancement in optical cavities boosts the efficiency of nonlinear optical processes, particularly in high harmonic generation for XUV sources, leading to higher repetition rates needed for applications like photoelectron spectroscopy and nuclear clock development.
  • - Using mode-locked thin-disk laser oscillators presents a simplified alternative to passive enhancement cavities, achieving comparable driving conditions while being less sensitive to losses due to internal gain, thus improving conversion efficiencies.
  • - The intra-oscillator approach outperforms traditional passive cavities in generating XUV flux, producing photon energies between 60 eV and 100 eV at a repetition rate of 17 MHz, and effectively delivering significant power at a desirable wavelength of 13.5 nm, relevant for the silicon industry.
View Article and Find Full Text PDF

We report an amplification-free thin-disk laser system delivering 0.9 GW peak power. The 120 fs pulses, at 14 MHz, centered around 1 µm, containing 12.

View Article and Find Full Text PDF

Multi-GeV wakefield acceleration in a plasma-modulated plasma accelerator.

Phys Rev E

February 2024

John Adams Institute for Accelerator Science and Department of Physics, University of Oxford, Denys Wilkinson Building, Keble Road, Oxford OX1 3RH, United Kingdom.

Article Synopsis
  • The study explores the plasma-modulated plasma accelerator (P-MoPA) using mathematical modeling and simulations, revealing the ability to control pulse profiles which significantly increases wake amplitude.
  • It indicates that the number of pulses in a train influences performance, with notable effects from detuning being minimal when the pulse count is below 30, and red-shifting helps mitigate some issues.
  • Results from simulations show promising energy gains of about 1.5 to 2.5 GeV for specific drive pulse energies, suggesting that P-MoPAs could feasibly accelerate electrons to multi-GeV levels using high-repetition-rate lasers.
View Article and Find Full Text PDF
Article Synopsis
  • High-power femtosecond pulses with high-repetition rates can enhance machining efficiency and improve measurement accuracy.
  • The study presents a Kerr-lens mode-locked Yb:YAG ring-cavity thin-disk oscillator, achieving significant pulse characteristics with 175-fs pulses at 71.5 W output power and a 65.3 MHz repetition rate.
  • It achieved a peak intra-cavity power of 110 MW and set a record with 101.3 W output power for mode-locked ring lasers, showcasing the potential of multi-pass thin-disk configurations for advanced applications.
View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!