Enabling Highly Efficient Neodymium Luminescence for Near‐Infrared Phosphor‐Converted Light‐Emitting Diode Applications

Author:

Wang Kaina12,Fu Jipeng1ORCID,Dong Hongliang2,Huang Bingyu1,Liu Jinru1,Tian Long3,Feng Jing3,Yang Chunzhen4,Lou Chenjie2,Xu Ligang2,Sun Tianyi5,Luo Huajie5,Xu Shiqing1,Yin Guowei6,Zhang Hongjie37,Tang Mingxue25ORCID

Affiliation:

1. Institute of Optoelectronic Materials and Devices China Jiliang University Hangzhou 310018 China

2. Center for High Pressure Science and Technology Advanced Research Beijing 100193 China

3. State Key Laboratory of Rare Earth Resources Utilization Changchun Institute of Applied Chemistry Chinese Academic of Sciences Changchun 130022 China

4. School of Materials Sun Yat‐Sen University Shenzhen 518107 China

5. School of Materials Science and Engineering University of Science and Technology Beijing Beijing 100083 China

6. The Seventh Affiliated Hospital of Sun Yat‐Sen University Shenzhen 518107 China

7. Department of Chemistry Tsinghua University Beijing 100084 China

Abstract

Near‐infrared (NIR) phosphors have been widely used in biomedical applications based on their deep tissue penetration. However, the lack of blue‐pumped NIR phosphors with emission ranges beyond 1000 nm has greatly limited the development of NIR phosphor‐converted light‐emitting diodes (pc‐LEDs). Herein, a facile way to boost the luminescence efficiency and thermal stability by introducing the promoters of Ce3+ and Na+ into Nd3+‐doped SrS NIR phosphor is demonstrated, thus achieving light emitting at 850–1500 nm with a peak wavelength of ≈1070 nm. Through sensitization by the allowed 4f → 5d transition of Ce3+, the SrS: Nd3+ phosphors are excitable by using a commercial blue LED, attributing to the effective energy transfer between Nd3+ and Ce3+. Besides, the structural analysis and density functional theory calculations reveal the lattice distortion mechanism and geometry of doping ions contributed to the weakened thermal quenching effect and the increasing of internal quantum efficiency. The optimized NIR phosphor luminescence intensity remains at 91.8% of the initial intensity at 393 K, and the internal quantum efficiency increases to 42.8% from 31.7% of the sample without Na+ doping. The present exploration of Nd3+‐doped NIR phosphors will provide a reference for designing NIR pc‐LEDs with enhanced properties.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Natural Science Foundation of Zhejiang Province

Fundamental Research Funds for the Provincial Universities of Zhejiang

Publisher

Wiley

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