scholarly journals Microjoule Pulse Energies at 1 MHz Repetition Rate from an All-Fiber Nonlinear Chirped-Pulse Amplifier

Author(s):  
Hamit Kalaycıoğlu ◽  
Bulent Oktem ◽  
F. Ömer Ilday
2020 ◽  
Vol 8 ◽  
Author(s):  
François Lureau ◽  
Guillaume Matras ◽  
Olivier Chalus ◽  
Christophe Derycke ◽  
Thomas Morbieu ◽  
...  

Abstract We report on a two-arm hybrid high-power laser system (HPLS) able to deliver 2 × 10 PW femtosecond pulses, developed at the Bucharest-Magurele Extreme Light Infrastructure Nuclear Physics (ELI-NP) Facility. A hybrid front-end (FE) based on a Ti:sapphire chirped pulse amplifier and a picosecond optical parametric chirped pulse amplifier based on beta barium borate (BBO) crystals, with a cross-polarized wave (XPW) filter in between, has been developed. It delivers 10 mJ laser pulses, at 10 Hz repetition rate, with more than 70 nm spectral bandwidth and high-intensity contrast, in the range of 1013:1. The high-energy Ti:sapphire amplifier stages of both arms were seeded from this common FE. The final high-energy amplifier, equipped with a 200 mm diameter Ti:sapphire crystal, has been pumped by six 100 J nanosecond frequency doubled Nd:glass lasers, at 1 pulse/min repetition rate. More than 300 J output pulse energy has been obtained by pumping with only 80% of the whole 600 J available pump energy. The compressor has a transmission efficiency of 74% and an output pulse duration of 22.7 fs was measured, thus demonstrating that the dual-arm HPLS has the capacity to generate 10 PW peak power femtosecond pulses. The reported results represent the cornerstone of the ELI-NP 2 × 10 PW femtosecond laser facility, devoted to fundamental and applied nuclear physics research.


Author(s):  
Zhigang Zhao ◽  
Akira Ozawa ◽  
Makoto Kuwata-Gonokami ◽  
Yohei Kobayashi

Efficient high harmonics generation (HHG) was demonstrated at 10 MHz repetition rate with an external femtosecond enhancement cavity, seeded by a ${\sim}70~\text{fs}$ post-compressed 10 MHz fiber chirped pulse amplifier (FCPA) laser. Operation lasting over 30 min with 0.1 mW outcoupled power at 149 nm was demonstrated. It was found that shorter pulse was beneficial for alleviating the nonlinear plasma effect and improving the efficiency of HHG. Low finesse cavity can relax the plasma nonlinearity clamped intra-cavity power and improve the cavity-locking stability. The pulse duration is expected to be below 100 fs for both 1040 nm and 149 nm outputs, making it ideal for applications such as time-resolved photoemission spectroscopy.


2021 ◽  
pp. 2000292
Author(s):  
Xiao Zou ◽  
Wenkai Li ◽  
Shizhen Qu ◽  
Kun Liu ◽  
Hao Li ◽  
...  

2010 ◽  
Vol 35 (11) ◽  
pp. 1752 ◽  
Author(s):  
Kyung-Han Hong ◽  
Juliet T. Gopinath ◽  
Darren Rand ◽  
Aleem M. Siddiqui ◽  
Shu-Wei Huang ◽  
...  

2010 ◽  
Vol 35 (7) ◽  
pp. 959 ◽  
Author(s):  
H. Kalaycioglu ◽  
B. Oktem ◽  
Ç. Şenel ◽  
P. P. Paltani ◽  
F. Ö. Ilday

Sign in / Sign up

Export Citation Format

Share Document