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.
Authors
- Weijie Yan (ORCID: https://orcid.org/0000-0002-3912-6028)
- Peihong Shi (ORCID: https://orcid.org/0000-0003-2031-2370)
- Jinliang Huang
- Xinyu Ye
- Junhua Lin
- Libin Xia
Institutions
- Jiangxi University of Technology (CN)
- Jiangxi University of Science and Technology (CN)
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
- Field-Weighted Citation Impact
- 0.00