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Periklis Petropoulos

Researcher at University of Southampton

Publications -  540
Citations -  10305

Periklis Petropoulos is an academic researcher from University of Southampton. The author has contributed to research in topics: Optical fiber & Fiber Bragg grating. The author has an hindex of 47, co-authored 515 publications receiving 9330 citations. Previous affiliations of Periklis Petropoulos include Karlsruhe Institute of Technology.

Papers
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Merging metamaterial and optical fiber technologies

TL;DR: A review of recent advances in metamaterials research directed towards the development of switchable and tunable functional nanostructures can be found in this article, where the authors discuss coherent control of metasurfaces, all-optical and electrooptical switching with reconfigurable nano-opto-mechanical and phase-change metammaterials and ways in which functional metAMaterials can be integrated with optical fiber platforms.
Proceedings Article

A mode-locked ytterbium doped holey fiber laser

TL;DR: In this article, the authors describe the first mode-locked fiber laser based on Holey optical fiber, which employs frequency-shifted feedback as the mode-locking mechanism, generates ~15ps pulses at 60 MHz, and is tunable from 1030nm-1050nm.
Proceedings ArticleDOI

Comparative Investigations between SSMF and Hollow-Core NANF for Transmission in the S+C+L-Bands

TL;DR: An experimental study reveals that hollow-core nested anti-resonant-nodeless fibers exhibit a broader bandwidth, lower latency, and offer >20% capacity enhancement in short-reach >100-Gb/s adaptively-loaded DMT transmission, relative to a standard SMF of a similar length.
Proceedings ArticleDOI

Efficient Four-Wave-Mixing at 1.55μm in a Short-Length Dispersion Shifted Lead Silicate Holey Fibre

TL;DR: In this paper, the authors demonstrate four-wave mixing in a 2.2m-long dispersion-tailored lead-silicate fiber with a conversion efficiency of -6dB and a bandwidth of ˜30nm.
Proceedings Article

Retiming of short optical pulses using linear pulse reshaping and all-optical switching

TL;DR: In this article, an all-optical, all-fiberized technique for the elimination of timing jitter in short pulse transmission systems is experimentally demonstrated based on pulse shaping in a superstructured fiber Bragg grating and optical switching in a nonlinear optical loop mirror.