Novel Er3+/Nd3+-doped borofluoride glass materials for NIR optical fiber applications with suitable thermal and mechanical properties

Abstract To advance the performance of broadband optical fiber communication systems, a novel borofluoride-based glass system with the composition 60B 2 O 3 -20Pb 3 O 4 -10MgF 2 -10LiF (BPML) was synthesized and accordingly investigated. The base glass was doped with 1 mol% of Er 3+ , Nd 3+ , or their combination to produce BPML: RE 3+ glass series. Glass structural analysis via X-ray diffraction (XRD), bulk density measurements, and Fourier transform infrared (FTIR) spectroscopy confirmed the amorphous nature of the glasses, indicating increased network compactness upon rare-earth doping, particularly with Er 3+ . The thermal properties were investigated through differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA), revealing enhanced thermal stability across all synthesized doped glass samples. Furthermore, the theoretical estimation of the mechanical characterization, including predicted elastic moduli and hardness using the Makishima-Mackenzie model, showed rigidity improvements with the incorporation of RE 3+ . Optical absorption spectra recorded over the 400–1600 nm range reveal characteristic transitions of Er 3+ and Nd 3+ , with co-doped samples displaying broader absorption bands, indicative of potential for wideband signal amplification. The photoluminescence studies under 773 nm excitation have demonstrated near-infrared (NIR) emission centered at 1.55 μm ( $$\\:{f}_{0}=1.929\\:x{10}^{14}$$ Hz ). The co-doped synthesized samples have exhibited enhanced emission intensity, indicating efficient energy transfer. The present work results show that the synthesized samples, doped with Er 3+ , Nd 3+ , or their combination, exhibit an optimal balance of thermal stability, mechanical robustness, and broadband NIR emission. Evidently, the synthesized glass samples achieve a high-quality factor of ( $$\\:{Q}_{f}=38.97$$ ), underscoring their potential for high-performance broadband applications. These properties position the proposed samples as a promising material for the fabrication of NIR optical fibers for communication benefits.

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Publication Details

Journal
Scientific Reports
Published
2026-09-15
DOI
https://doi.org/10.1038/s41598-026-67626-3
Primary Topic
Glass properties and applications
Type
article
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article

Novel Er3+/Nd3+-doped borofluoride glass materials for NIR optical fiber applications with suitable thermal and mechanical properties

Aly Saeed, Mona A. El Naggar, Heba A. Gohra
Scientific Reports
Glass properties and applications
article

Novel Er3+/Nd3+-doped borofluoride glass materials for NIR optical fiber applications with suitable thermal and mechanical properties

Aly Saeed, Mona A. El Naggar, Heba A. Gohra
article en

Abstract

Abstract To advance the performance of broadband optical fiber communication systems, a novel borofluoride-based glass system with the composition 60B 2 O 3 -20Pb 3 O 4 -10MgF 2 -10LiF (BPML) was synthesized and accordingly investigated. The base glass was doped with 1 mol% of Er 3+ , Nd 3+ , or their combination to produce BPML: RE 3+ glass series. Glass structural analysis via X-ray diffraction (XRD), bulk density measurements, and Fourier transform infrared (FTIR) spectroscopy confirmed the amorphous nature of the glasses, indicating increased network compactness upon rare-earth doping, particularly with Er 3+ . The thermal properties were investigated through differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA), revealing enhanced thermal stability across all synthesized doped glass samples. Furthermore, the theoretical estimation of the mechanical characterization, including predicted elastic moduli and hardness using the Makishima-Mackenzie model, showed rigidity improvements with the incorporation of RE 3+ . Optical absorption spectra recorded over the 400–1600 nm range reveal characteristic transitions of Er 3+ and Nd 3+ , with co-doped samples displaying broader absorption bands, indicative of potential for wideband signal amplification. The photoluminescence studies under 773 nm excitation have demonstrated near-infrared (NIR) emission centered at 1.55 μm ( $$\:{f}_{0}=1.929\:x{10}^{14}$$ Hz ). The co-doped synthesized samples have exhibited enhanced emission intensity, indicating efficient energy transfer. The present work results show that the synthesized samples, doped with Er 3+ , Nd 3+ , or their combination, exhibit an optimal balance of thermal stability, mechanical robustness, and broadband NIR emission. Evidently, the synthesized glass samples achieve a high-quality factor of ( $$\:{Q}_{f}=38.97$$ ), underscoring their potential for high-performance broadband applications. These properties position the proposed samples as a promising material for the fabrication of NIR optical fibers for communication benefits.

Scientific ReportsVol. 16(1)
Cairo University (EG), Egyptian Russian University (EG)
Affordable and clean energy
Openalex Percentile: Top 22%
Glass properties and applications
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