Tellurite glasses are known to be highly promising materials for broadening the amplification bandwidth of Er3+-doped waveguide amplifiers, as they have large stimulated emission cross sections and broad emission bandwidth around the 1.55 ?m wavelength. Furthermore, they exhibit a wide transmission range, the lowest vibrational energy among oxide glass formers, and good non linear properties. Nevertheless fabrication of waveguides in tellurite glasses appears to be a challenging task and so far it has been reported only in a few papers. Here we report on the development of a method based on high-energy ion beam irradiation to create active channel waveguides in a tungsten-tellurite glass doped with Er2O2. The waveguide stripes have been realized by 1.5 MeV N+ irradiation of the glass sample through a silicon mask with doses of 1.0 × 1016 ions/cm2 using a 5 MeV Van de Graaff accelerator. Multimode light propagation has indeed been observed in these channels, confirming the effectiveness of this technique.

Channel waveguides fabrication in Er3+-doped tellurite glass by ion beam irradiation

Berneschi;Brenci;Ma;Conti;Pelli;Righini;
2007

Abstract

Tellurite glasses are known to be highly promising materials for broadening the amplification bandwidth of Er3+-doped waveguide amplifiers, as they have large stimulated emission cross sections and broad emission bandwidth around the 1.55 ?m wavelength. Furthermore, they exhibit a wide transmission range, the lowest vibrational energy among oxide glass formers, and good non linear properties. Nevertheless fabrication of waveguides in tellurite glasses appears to be a challenging task and so far it has been reported only in a few papers. Here we report on the development of a method based on high-energy ion beam irradiation to create active channel waveguides in a tungsten-tellurite glass doped with Er2O2. The waveguide stripes have been realized by 1.5 MeV N+ irradiation of the glass sample through a silicon mask with doses of 1.0 × 1016 ions/cm2 using a 5 MeV Van de Graaff accelerator. Multimode light propagation has indeed been observed in these channels, confirming the effectiveness of this technique.
2007
Inglese
Integrated Optics: Devices, Materials, and Technologies XI;
6475
http://www.scopus.com/inward/record.url?eid=2-s2.0-34248675511&partnerID=40&md5=4ef7f9df7269a542ff33363b8cf51896
Light amplifiers
Light propagation
Optical glass
Optical waveguides
Stimulated emission
Tellurium compounds
Channel waveguides
Er3+ doped glasses
Ion beam irradiation
Tellurite glass
Integrated optics
cited By (since 1996)0; Conference of org.apache.xalan.xsltc.dom.DOMAdapter@531e016d ; Conference Date: org.apache.xalan.xsltc.dom.DOMAdapter@56efc5bc Through org.apache.xalan.xsltc.dom.DOMAdapter@179ee63b; Conference Code:69620
20
none
Berneschi, Simone; Sa, B; Brenci, Massimo; Brenci, Massimo; NUNZI CONTI, Gualtiero; Gna, C; Pelli, Stefano; Sa, ; Righini, Giancarlo; Gca, ; Bányász, ...espandi
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/19990
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