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Updated: May 2, 2026

High Resolution Phonon-assisted Quasi-resonance Fluorescence Spectroscopy
Published on: June 28, 2016
Small Stokes Shift Induced Highly Efficient and Thermally Stable Broadband Near-Infrared Antimonite Double Perovskite
Zhihao Zhou1,2, Hongjun Jiang1, Bozhao Yin1
1State Key Laboratory of Luminescent Materials and Devices, Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques, School of Materials Science and Engineering, South China University of Technology, Guangzhou, 510641, China.
Abstract:
The exploration of efficient broadband portable near-infrared (NIR) light sources is crucial for next-generation NIR spectroscopy-based technologies. However, developing thermally stable and highly efficient NIR photonic materials exceeding 830 nm is met with limited success. Here, a series of broadband NIR phosphors with long-wavelength emission (λem > 830 nm) is designed by incorporating activator Cr3+ ions into ALaMgSbO6 (A = Ca, Sr) double perovskite matrices. Specifically, a cation site substitution strategy is proposed to reduce the Stokes shift of ALaMgSbO6:Cr3+ (A = Ca, Sr), rendering these as-prepared NIR phosphors possess excellent thermal resistance performance (89.80%@423 K) and high quantum efficiency (82.5%) simultaneously. Structural analyses, DFT calculations, and spectroscopy measurements revealed that Cr3+ ions can occupy both [SbO6] and [MgO6] polyhedral sites but prefer to replace Sb5+ ions in ALaMgSbO6 (A = Ca, Sr). The luminescence efficiency and thermal stability of the samples are further improved through a flux strategy, and the emission spectra are effectively broadened by the introduction of Yb3+ as an extra NIR emitter. Furthermore, the designed phosphors exhibit a full visible-spectrum conversion ability from 400 to 800 nm, showing great promise for versatile NIR spectroscopy applications in solar energy harvesting, night vision, non-destructive visualization, and dental analysis.
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