Literature DB >> 25430178

A novel femtosecond-gated, high-resolution, frequency-shifted shearing interferometry technique for probing pre-plasma expansion in ultra-intense laser experiments.

S Feister1, J A Nees2, J T Morrison3, K D Frische2, C Orban1, E A Chowdhury1, W M Roquemore4.   

Abstract

Ultra-intense laser-matter interaction experiments (>10(18) W/cm(2)) with dense targets are highly sensitive to the effect of laser "noise" (in the form of pre-pulses) preceding the main ultra-intense pulse. These system-dependent pre-pulses in the nanosecond and/or picosecond regimes are often intense enough to modify the target significantly by ionizing and forming a plasma layer in front of the target before the arrival of the main pulse. Time resolved interferometry offers a robust way to characterize the expanding plasma during this period. We have developed a novel pump-probe interferometry system for an ultra-intense laser experiment that uses two short-pulse amplifiers synchronized by one ultra-fast seed oscillator to achieve 40-fs time resolution over hundreds of nanoseconds, using a variable delay line and other techniques. The first of these amplifiers acts as the pump and delivers maximal energy to the interaction region. The second amplifier is frequency shifted and then frequency doubled to generate the femtosecond probe pulse. After passing through the laser-target interaction region, the probe pulse is split and recombined in a laterally sheared Michelson interferometer. Importantly, the frequency shift in the probe allows strong plasma self-emission at the second harmonic of the pump to be filtered out, allowing plasma expansion near the critical surface and elsewhere to be clearly visible in the interferograms. To aid in the reconstruction of phase dependent imagery from fringe shifts, three separate 120° phase-shifted (temporally sheared) interferograms are acquired for each probe delay. Three-phase reconstructions of the electron densities are then inferred by Abel inversion. This interferometric system delivers precise measurements of pre-plasma expansion that can identify the condition of the target at the moment that the ultra-intense pulse arrives. Such measurements are indispensable for correlating laser pre-pulse measurements with instantaneous plasma profiles and for enabling realistic Particle-in-Cell simulations of the ultra-intense laser-matter interaction.

Year:  2014        PMID: 25430178     DOI: 10.1063/1.4886955

Source DB:  PubMed          Journal:  Rev Sci Instrum        ISSN: 0034-6748            Impact factor:   1.523


  3 in total

1.  Time-resolved study of holeboring in realistic experimental conditions.

Authors:  J Hornung; Y Zobus; S Roeder; A Kleinschmidt; D Bertini; M Zepf; V Bagnoud
Journal:  Nat Commun       Date:  2021-12-01       Impact factor: 14.919

2.  Off-harmonic optical probing of high intensity laser plasma expansion dynamics in solid density hydrogen jets.

Authors:  Constantin Bernert; Stefan Assenbaum; Florian-Emanuel Brack; Thomas E Cowan; Chandra B Curry; Marco Garten; Lennart Gaus; Maxence Gauthier; Sebastian Göde; Ilja Goethel; Siegfried H Glenzer; Thomas Kluge; Stephan Kraft; Florian Kroll; Michael Kuntzsch; Josefine Metzkes-Ng; Markus Loeser; Lieselotte Obst-Huebl; Martin Rehwald; Hans-Peter Schlenvoigt; Christopher Schoenwaelder; Ulrich Schramm; Mathias Siebold; Franziska Treffert; Tim Ziegler; Karl Zeil
Journal:  Sci Rep       Date:  2022-05-04       Impact factor: 4.996

3.  Evidence of radial Weibel instability in relativistic intensity laser-plasma interactions inside a sub-micron thick liquid target.

Authors:  Gregory K Ngirmang; John T Morrison; Kevin M George; Joseph R Smith; Kyle D Frische; Chris Orban; Enam A Chowdhury; W Mel Roquemore
Journal:  Sci Rep       Date:  2020-06-18       Impact factor: 4.996

  3 in total

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