Literature DB >> 28569848

Higher-order mode suppression in twisted single-ring hollow-core photonic crystal fibers.

N N Edavalath, M C Günendi, R Beravat, G K L Wong, M H Frosz, J-M Ménard, P St J Russell.   

Abstract

A hollow-core single-ring photonic crystal fiber (SR-PCF) consists of a ring of capillaries arranged around a central hollow core. Spinning the preform during drawing introduces a continuous helical twist, offering a novel means of controlling the modal properties of hollow-core SR-PCF. For example, twisting geometrically increases the effective axial propagation constant of the LP<sub>01</sub>-like modes of the capillaries, providing a means of optimizing the suppression of HOMs, which occurs when the LP<sub>11</sub>-like core mode phase-matches to the LP<sub>01</sub>-like modes of the surrounding capillaries. (In a straight fiber, optimum suppression occurs for a capillary-to-core diameter ratio d/D=0.682.) Twisting also introduces circular birefringence (to be studied in a future Letter) and has a remarkable effect on the transverse intensity profiles of the higher-order core modes, forcing the two-lobed LP<sub>11</sub>-like mode in the untwisted fiber to become three-fold symmetric in the twisted case. These phenomena are explored by means of extensive numerical modeling, an analytical model, and a series of experiments. Prism-assisted side-coupling is used to measure the losses, refractive indices, and near-field patterns of individual fiber modes in both the straight and twisted cases.

Entities:  

Year:  2017        PMID: 28569848     DOI: 10.1364/OL.42.002074

Source DB:  PubMed          Journal:  Opt Lett        ISSN: 0146-9592            Impact factor:   3.776


  1 in total

1.  Tailoring modal properties of inhibited-coupling guiding fibers by cladding modification.

Authors:  Jonas H Osório; Matthieu Chafer; Benoît Debord; Fabio Giovanardi; Martin Cordier; Martin Maurel; Frédéric Delahaye; Foued Amrani; Luca Vincetti; Frédéric Gérôme; Fetah Benabid
Journal:  Sci Rep       Date:  2019-02-04       Impact factor: 4.379

  1 in total

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