Applied Sciences (Apr 2022)

O<sub>2</sub> Loaded Germanosilicate Optical Fibers: Experimental In Situ Investigation and Ab Initio Simulation Study of GLPC Evolution under Irradiation

  • Imene Reghioua,
  • Luigi Giacomazzi,
  • Antonino Alessi,
  • Blaz Winkler,
  • Layla Martin-Samos,
  • Sylvain Girard,
  • Diego Di Francesca,
  • Mattia Fanetti,
  • Nicolas Richard,
  • Philippe Paillet,
  • Melanie Raine,
  • Simonpietro Agnello,
  • Matjaz Valant,
  • Aziz Boukenter,
  • Youcef Ouerdane

DOI
https://doi.org/10.3390/app12083916
Journal volume & issue
Vol. 12, no. 8
p. 3916

Abstract

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In this work we present a combined experimental and ab initio simulation investigation concerning the Germanium Lone Pair Center (GLPC), its interaction with molecular oxygen (O2), and evolution under irradiation. First, O2 loading has been applied here to Ge-doped optical fibers to reduce the concentration of GLPC point defects. Next, by means of cathodoluminescence in situ experiments, we found evidence that the 10 keV electron irradiation of the treated optical fibers induces the generation of GLPC centers, while in nonloaded optical fibers, the irradiation causes the bleaching of the pre-existing GLPC. Ab initio calculations were performed to investigate the reaction of the GLPC with molecular oxygen. Such investigations suggested the stability of the dioxagermirane (DIOG) bulk defect, and its back conversion into GLPC with a local release of O2 under irradiation. Furthermore, it is also inferred that a remarkable portion of the O2 passivated GLPC may form Ge tetrahedra connected to peroxy bridges. Such structures may have a larger resistance to the irradiation and not be back converted into GLPC.

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