Gd3 + -mediated crystallization homogenization in perovskite glass for high-performance x-ray scintillators and white LEDs

Metal halide perovskite nanocrystals in glass suffer from random crystallization, causing spatial and size inhomogeneity that limits performance. This study uses Gd3+ as a network modifier to disrupt the [SiO4]/[BO4] network, increasing non-bridging oxygen and reducing melt viscosity. This process suppresses random nucleation and leads to crystallization behavior that can be reasonably attributed to an Ostwald-ripening process, yielding highly uniform CsPbI3 nanocrystals, high crystallinity, and minimal defects. Structural homogenization brings notable optical improvements: the optimized CsPbI3:1Gd sample shows a threefold increase in photoluminescence quantum yield and prolonged fluorescence lifetime. As an x-ray scintillator, Gd incorporation raises glass density and effective atomic number, enabling excellent x-ray attenuation. The composite achieves a high spatial resolution of 14.6 lp/mm, a low detection limit of 1.59 mGy/s, and outstanding irradiation stability (maintaining 86% light yield of Bi4Ge3O12 crystals). In white light-emitting diodes, it delivers a high color rendering index (Ra = 87.2), a luminous efficacy of 77.9 lm/W, and 116% National Television System Committee color gamut, with stable performance under driving currents of 25–200 mA, demonstrating great potential for solid-state lighting and displays.

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Publication Details

Journal
Applied Physics Letters
Published
2026-10-05
DOI
https://doi.org/10.1063/5.0353734
Primary Topic
Perovskite Materials and Applications
Type
article
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article

Gd3 + -mediated crystallization homogenization in perovskite glass for high-performance x-ray scintillators and white LEDs

Pengkai Wang, Guoying Zhao, Langping Dong, Yongzheng Fang et al.
Applied Physics Letters
Perovskite Materials and Applications
article

Gd3 + -mediated crystallization homogenization in perovskite glass for high-performance x-ray scintillators and white LEDs

Pengkai Wang, Guoying Zhao, Langping Dong, Yongzheng Fang, Jingshan Hou, Xueqing Zhang
article en

Abstract

Metal halide perovskite nanocrystals in glass suffer from random crystallization, causing spatial and size inhomogeneity that limits performance. This study uses Gd3+ as a network modifier to disrupt the [SiO4]/[BO4] network, increasing non-bridging oxygen and reducing melt viscosity. This process suppresses random nucleation and leads to crystallization behavior that can be reasonably attributed to an Ostwald-ripening process, yielding highly uniform CsPbI3 nanocrystals, high crystallinity, and minimal defects. Structural homogenization brings notable optical improvements: the optimized CsPbI3:1Gd sample shows a threefold increase in photoluminescence quantum yield and prolonged fluorescence lifetime. As an x-ray scintillator, Gd incorporation raises glass density and effective atomic number, enabling excellent x-ray attenuation. The composite achieves a high spatial resolution of 14.6 lp/mm, a low detection limit of 1.59 mGy/s, and outstanding irradiation stability (maintaining 86% light yield of Bi4Ge3O12 crystals). In white light-emitting diodes, it delivers a high color rendering index (Ra = 87.2), a luminous efficacy of 77.9 lm/W, and 116% National Television System Committee color gamut, with stable performance under driving currents of 25–200 mA, demonstrating great potential for solid-state lighting and displays.

Applied Physics LettersVol. 129(14)
Shanghai Institute of Technology (CN)
Openalex Percentile: Top 22%
Perovskite Materials and Applications
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