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Aurélie Jullien

Researcher at Centre national de la recherche scientifique

Publications -  101
Citations -  2378

Aurélie Jullien is an academic researcher from Centre national de la recherche scientifique. The author has contributed to research in topics: Laser & Cross-polarized wave generation. The author has an hindex of 26, co-authored 93 publications receiving 2143 citations. Previous affiliations of Aurélie Jullien include École Polytechnique & University of California.

Papers
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10-10 temporal contrast for femtosecond ultraintense lasers by cross-polarized wave generation

TL;DR: Nonlinear properties associated with chi(3) tensor elements in BaF2 cubic crystal are taken advantage to improve the temporal contrast of femtosecond laser pulses and obtain a transmission efficiency of 10% and 10(-10) contrast with an input pulse in the millijoule range.
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Relativistic electron beams driven by kHz single-cycle light pulses

TL;DR: In this paper, single-cycle laser pulses are used to drive high-quality MeV relativistic electron beams, thereby enabling kHz operation and dramatic downsizing of the laser system.
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Compression of CEP-stable multi-mJ laser pulses down to 4 fs in long hollow fibers

TL;DR: In this paper, a carrier-envelope phase stable 4 fs near-IR pulses with 3 mJ energy were generated by spectral broadening of circularly polarized 8 mJ pulses in a differentially pumped 2 m long composite stretched flexible hollow fiber.
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Generation of 4.3 fs, 1 mJ laser pulses via compression of circularly polarized pulses in a gas-filled hollow-core fiber

TL;DR: Seding with circularly polarized pulses proves to be an effective approach for high-energy operation of the hollow-fiber compression technique and up to 30% more energy throughput and significantly improved output spectral stability are observed.
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Attosecond control of collective electron motion in plasmas

TL;DR: In this paper, the ability to coherently control the collective attosecond dynamics of relativistic electrons driven through a plasma by an intense laser represents an important step in the development of techniques to manipulate and study extreme states of matter.