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Florent Scol

Researcher at Commissariat à l'énergie atomique et aux énergies alternatives

Publications -  12
Citations -  288

Florent Scol is an academic researcher from Commissariat à l'énergie atomique et aux énergies alternatives. The author has contributed to research in topics: Photonic-crystal fiber & Polarization-maintaining optical fiber. The author has an hindex of 3, co-authored 10 publications receiving 210 citations.

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Ultralow transmission loss in inhibited-coupling guiding hollow fibers

TL;DR: In this article, the authors report on several fibers with a hypocycloid core contour and a cladding structure made of a single ring from a tubular amorphous lattice, including one with a record transmission loss of 7.7 dB/km at ∼ 750 nm (only a factor ∼2 above the SRSL).
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All-fiber Mamyshev oscillator with high average power and harmonic mode-locking

TL;DR: This Letter presents the first, to the best of the knowledge, experimental demonstration of high-order harmonic mode-locking of an all-fiber Mamyshev oscillator using standard step-index fiber.
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Measurements of the absolute timing jitter and intensity noise of an all-fiber Mamyshev oscillator.

TL;DR: In this paper, the experimental investigation of timing jitter and relative intensity noise of a Mamyshev ring oscillator operating in the fundamental mode-lock regime is presented, and it is shown that both timing jitters and intensity noise spectra are correlated to the output optical power with noise increase close to the loss of the mode-locking.
Posted Content

Ultra-low transmission loss (7.7 dB/km at 750 nm) inhibited-coupling guiding hollow-core photonic crystal fibers with a single ring of tubular lattice cladding

TL;DR: In this article, the authors report on several IC-guided hollow-core photonic crystal fiber (HC-PCF) with a hypocycloid core contour and a cladding structure made of a single ring from a tubular lattice.
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Polarization maintaining single-mode fiber delivering a flat top intensity profile.

TL;DR: It is reported, through numerical simulations and experimental data, the first successful fabrication of a polarization maintaining single-mode fiber delivering a flat top intensity profile at 1.05 µm.