Energy Transfer Engineering Enables Efficient Near‐Infrared Luminescence and Zero‐Thermal‐Quenching in GAGG: Fe 3+ , Yb 3+ Phosphors

ABSTRACT In recent years, Fe 3+ ‐activated near‐infrared (NIR) phosphors have made significant progress, but achieving broadband emission with high efficiency and high thermal stability remains a daunting challenge. A series of novel garnet‐type Gd 3 Al 4 GaO 12 (GAGG) phosphors with Fe 3+ single‐doped and Fe 3+ /Yb 3 + co‐doped were synthesized by the high‐temperature solid‐state method. Among them, GAGG: 0.01Fe 3+ exhibits intense broadband emission centered at 786 nm (650–1000 nm), lying predominantly in the NIR‐I region, upon 254 nm excitation, achieving a photoluminescence quantum yield (PLQY) as high as 82.6% and retaining 89% of its room‐temperature intensity at 420 K. Notably, introducing Yb 3+ establishes an efficient energy‐transfer pathway that extends the overall emission response into the NIR‐II region, with measurable emission reaching approximately 1150 nm, while boosting the PLQY to 90.1%. Leveraging the Stark level splitting and thermal population effects of Yb 3+ , the anomalous emission enhancement in the 900–1010 nm region compensates for Fe 3+ thermal quenching, enabling the GAGG: 0.01Fe 3+ , 0.15Yb 3+ phosphor to achieve zero thermal quenching with 100.1% intensity retention at 420 K. The results show that energy transfer engineering provides an effective strategy for developing high‐performance Fe 3+ ‐activated NIR materials with zero thermal quenching, offering promising applications in anti‐counterfeiting, night‐vision illumination, and non‐destructive testing.

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Publication Details

Journal
Laser & Photonics Review
Published
2026-10-09
DOI
https://doi.org/10.1002/lpor.72048
Primary Topic
Luminescence Properties of Advanced Materials
Type
article
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article

Energy Transfer Engineering Enables Efficient Near‐Infrared Luminescence and Zero‐Thermal‐Quenching in GAGG: Fe 3+ , Yb 3+ Phosphors

Bo Wang, Jianhui Huang, Haiyang Luo, Huaizhen Yang et al.
Laser & Photonics Review
Luminescence Properties of Advanced Materials
article

Energy Transfer Engineering Enables Efficient Near‐Infrared Luminescence and Zero‐Thermal‐Quenching in GAGG: Fe 3+ , Yb 3+ Phosphors

Bo Wang, Jianhui Huang, Haiyang Luo, Huaizhen Yang, Haixin Liu, Yuanlin Wang, Zhan Du
article en

Abstract

ABSTRACT In recent years, Fe 3+ ‐activated near‐infrared (NIR) phosphors have made significant progress, but achieving broadband emission with high efficiency and high thermal stability remains a daunting challenge. A series of novel garnet‐type Gd 3 Al 4 GaO 12 (GAGG) phosphors with Fe 3+ single‐doped and Fe 3+ /Yb 3 + co‐doped were synthesized by the high‐temperature solid‐state method. Among them, GAGG: 0.01Fe 3+ exhibits intense broadband emission centered at 786 nm (650–1000 nm), lying predominantly in the NIR‐I region, upon 254 nm excitation, achieving a photoluminescence quantum yield (PLQY) as high as 82.6% and retaining 89% of its room‐temperature intensity at 420 K. Notably, introducing Yb 3+ establishes an efficient energy‐transfer pathway that extends the overall emission response into the NIR‐II region, with measurable emission reaching approximately 1150 nm, while boosting the PLQY to 90.1%. Leveraging the Stark level splitting and thermal population effects of Yb 3+ , the anomalous emission enhancement in the 900–1010 nm region compensates for Fe 3+ thermal quenching, enabling the GAGG: 0.01Fe 3+ , 0.15Yb 3+ phosphor to achieve zero thermal quenching with 100.1% intensity retention at 420 K. The results show that energy transfer engineering provides an effective strategy for developing high‐performance Fe 3+ ‐activated NIR materials with zero thermal quenching, offering promising applications in anti‐counterfeiting, night‐vision illumination, and non‐destructive testing.

Laser & Photonics Review
China Academy of Safety Sciences and Technology (CN), Wuyi University (CN), Hunan Rare Earth Metal Material Research Institute (CN), Jiangxi University of Science and Technology (CN), Wuyi University (CN)
Openalex Percentile: Top 27%
Luminescence Properties of Advanced Materials
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