Broadband-NIR Luminescent MgNb 2 O 6 :Cr 3+ transparent glass ceramics fabricated by co-melting and controlled crystallization

Abstract Heat accumulation and severe light scattering limit the applications of near-infrared phosphor-converted LEDs (NIR pc-LEDs) in the high-power field. Replacing phosphor encapsulation with Cr3+-doped glass-ceramics (GCs) provides an effective solution. However, obtaining transparent GCs with high thermal quenching resistance remains challenging. In this work, a novel Cr3+-doped MgNb2O6 GC was fabricated by co-melting and controlled crystallization using glass-forming and target-phase precursors. The resultant GCs possess acceptable transmittance and favorable thermal quenching resistance. By tuning the Mg/Nb ratio, a single MgNb2O6 crystalline phase was precipitated, and a two-step heat treatment optimized the GC transmittance. With nucleation temperature rising from 670 ℃ to 750 ℃ and crystallization temperature increasing from 820 ℃ to 960 ℃, crystallinity, grain size and luminous intensity gradually increase, whereas transmittance decreases monotonically. Cr3+ are proposed to simultaneously occupy Mg2+ and Nb5+ sites in MgNb2O6. Broadband NIR emission covering 600–1300 nm with a full width at half maximum (FWHM) of 210 nm is achieved, arising from intermediate and weak crystal fields and moderate electron-phonon coupling. After nucleation at 730 ℃ and crystallization at 940 ℃, the optimized GC shows a transmittance of approximately 50% and a high absorptivity of 60.5%. The GC exhibits favorable thermal quenching resistance, retaining 67.5% initial luminous intensity at 373 K. The NIR LED device integrated with the MgNb2O6:Cr3+ GC delivers an output power of 240.9 mW and a power conversion efficiency of 6.3%, demonstrating promising application prospects in night-vision illumination, food testing, biomedical and anti-counterfeiting fields.

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Publication Details

Journal
Journal of Advanced Ceramics
Published
2026-09-04
DOI
https://doi.org/10.26599/jac.2026.9221371
Primary Topic
Luminescence Properties of Advanced Materials
Type
article
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Broadband-NIR Luminescent MgNb 2 O 6 :Cr 3+ transparent glass ceramics fabricated by co-melting and controlled crystallization

Weijie Yan, Peihong Shi, Jinliang Huang, Xinyu Ye et al.
Journal of Advanced Ceramics
Luminescence Properties of Advanced Materials
article

Broadband-NIR Luminescent MgNb 2 O 6 :Cr 3+ transparent glass ceramics fabricated by co-melting and controlled crystallization

Weijie Yan, Peihong Shi, Jinliang Huang, Xinyu Ye, Junhua Lin, Libin Xia
article en

Abstract

Abstract Heat accumulation and severe light scattering limit the applications of near-infrared phosphor-converted LEDs (NIR pc-LEDs) in the high-power field. Replacing phosphor encapsulation with Cr3+-doped glass-ceramics (GCs) provides an effective solution. However, obtaining transparent GCs with high thermal quenching resistance remains challenging. In this work, a novel Cr3+-doped MgNb2O6 GC was fabricated by co-melting and controlled crystallization using glass-forming and target-phase precursors. The resultant GCs possess acceptable transmittance and favorable thermal quenching resistance. By tuning the Mg/Nb ratio, a single MgNb2O6 crystalline phase was precipitated, and a two-step heat treatment optimized the GC transmittance. With nucleation temperature rising from 670 ℃ to 750 ℃ and crystallization temperature increasing from 820 ℃ to 960 ℃, crystallinity, grain size and luminous intensity gradually increase, whereas transmittance decreases monotonically. Cr3+ are proposed to simultaneously occupy Mg2+ and Nb5+ sites in MgNb2O6. Broadband NIR emission covering 600–1300 nm with a full width at half maximum (FWHM) of 210 nm is achieved, arising from intermediate and weak crystal fields and moderate electron-phonon coupling. After nucleation at 730 ℃ and crystallization at 940 ℃, the optimized GC shows a transmittance of approximately 50% and a high absorptivity of 60.5%. The GC exhibits favorable thermal quenching resistance, retaining 67.5% initial luminous intensity at 373 K. The NIR LED device integrated with the MgNb2O6:Cr3+ GC delivers an output power of 240.9 mW and a power conversion efficiency of 6.3%, demonstrating promising application prospects in night-vision illumination, food testing, biomedical and anti-counterfeiting fields.

Journal of Advanced Ceramics
Jiangxi University of Technology (CN), Jiangxi University of Science and Technology (CN)
Openalex Percentile: Top 23%
Luminescence Properties of Advanced Materials
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