Synergistic enhancement of optical properties in erbium-doped borate glasses through copper nanoparticle incorporation

dc.contributor.authorIngle, A.
dc.contributor.authorShashikala, H.D.
dc.contributor.authorUdayashankar, N.K.
dc.date.accessioned2026-02-04T12:24:18Z
dc.date.issued2024
dc.description.abstractThe present study investigated the impact of incorporating copper nanoparticles (CuNPs) on the optical properties of erbium-doped borate glasses. Through melt-quenching and heat treatment techniques, glasses with varying Cu<inf>2</inf>O concentrations (x = 0–5 mol%) were synthesized. Physical and structural analyses revealed that Cu ions serve as effective network modifiers. They foster the formation of a greater proportion of BO<inf>4</inf> tetrahedra and thus enhancing glass homogeneity. Optical absorption spectra demonstrate a distinct modulation of Er3+ absorption bands with Cu<inf>2</inf>O embedding, indicating the formation of CuNPs, as validated by the emergence of surface plasmon resonance bands. This structural evolution results in a noticeable reduction in the bandgap energy, signifying improved semiconducting behavior. Judd-Ofelt analysis highlighted the profound influence of CuNPs on hypersensitive transitions, thereby affecting oscillator strength. Photoluminescence measurements revealed amplified emission in the visible red and near infrared (NIR) region, attributed to the synergistic effects of CuNPs and Er3+ ions, with 5 mol % Cu<inf>2</inf>O exhibiting the highest emission intensity. Analysis of the radiative properties validates the enhancement of the emission cross-section, gain bandwidth, optical gain and radiative transitions. These enhancements contribute to a notable increase in the branching ratio from 0.91 % to 5.41 % accompanied by an increase in the quantum efficiency from ∼79 % to ∼90 %. Moreover, decay analysis revealed a notable enhancement in lifetime from 3.03 ms to 15.74 ms, which is indicative of enhanced radiative transitions. Overall, the incorporation of CuNPs into erbium-doped borate glasses facilitates significant enhancements in physical, structural, and optical properties. This positions them as promising materials for a wide array of optoelectronic applications. This comprehensive study sheds light on the complex interplay between CuNPs and erbium-barium borate glasses, offering valuable insights for the development of advanced optoelectronic materials with enhanced performance and functionality. © 2024 Elsevier Ltd and Techna Group S.r.l.
dc.identifier.citationCeramics International, 2024, 50, 19, pp. 35019-35034
dc.identifier.issn2728842
dc.identifier.urihttps://doi.org/10.1016/j.ceramint.2024.06.310
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/20901
dc.publisherElsevier Ltd
dc.subjectBarium compounds
dc.subjectCopper
dc.subjectCopper oxides
dc.subjectGlass
dc.subjectHeavy ions
dc.subjectInfrared devices
dc.subjectJudd-Ofelt theory
dc.subjectLight absorption
dc.subjectMetal ions
dc.subjectMetal nanoparticles
dc.subjectOptical properties
dc.subjectOptoelectronic devices
dc.subjectPhotoluminescence
dc.subjectRare earths
dc.subjectStructural analysis
dc.subjectSurface plasmon resonance
dc.subjectBorate glass
dc.subjectCopper nanoparticles
dc.subjectErbium doped
dc.subjectJudd- Ofelt theories
dc.subjectMelt-quenching
dc.subjectRadiative transitions
dc.subjectRare earth oxide
dc.subjectSurface-plasmon resonance
dc.subjectSynergistic enhancement
dc.subjectErbium compounds
dc.titleSynergistic enhancement of optical properties in erbium-doped borate glasses through copper nanoparticle incorporation

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