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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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Journal ArticleDOI

Extruded singlemode, high-nonlinearity, tellurite glass holey fibre

TL;DR: In this paper, the fabrication of the first singlemode tellurite glass holey fiber from an extruded preform was reported, and the fiber loss was measured to be 3.5 dB/m at 1047 nm, and 5.8 dB /m at 1550 nm.
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Detailed characterization of a fiber-optic parametric amplifier in phase-sensitive and phase-insensitive operation

TL;DR: A single-pumped, non-degenerate phase-sensitive parametric amplifier with a precise control of phase and amplitude of the in-going waves is experimentally demonstrated and a departure from the theoretical maximum attenuation as the gain increases is observed and explained.
Proceedings ArticleDOI

First demonstration of all-optical QPSK signal regeneration in a novel multi-format phase sensitive amplifier

TL;DR: In this paper, a black-box optical phase sensitive amplifier (PSA) configuration was proposed for the regeneration of multi-level phase encoded signals with a 10 Gbaud quadrature phase shift keyed input.
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Gridless optical networking field trial: Flexible spectrum switching, defragmentation and transport of 10G/40G/100G/555G over 620-km field fiber

TL;DR: The first gridless networking field trial with flexible spectrum switching nodes over 620 km field fibre links achieves successful transport, spectrum switching and defragmentation achieved for mixed line signals including 555G and coherent 100G.
Journal ArticleDOI

Fibre-optic metadevice for all-optical signal modulation based on coherent absorption.

TL;DR: In this paper, the authors show that integration of metamaterial and optical fiber technologies enables all-optical XOR, NOT and AND logical functions that are performed at up to 40 Gbps with few femtojoules per bit energy consumption within a coherent fully fiberized network.