Tuning the Photoluminescence Properties of β‐NaYF4:Yb,Er by Bi3+ Doping Strategy
Yanli Ding, Zhaohan Li
Abstract
Yanli Ding, Zhaohan Li
Abstract
Abstract The low luminous efficiency of upconversion materials limits their practical applications in various fields. The present study focuses on the efficient upconversion enhancement of β‐NaYF4:Yb,Er induced by Bi3+ doping. The XRD and SEM results show that introducing Bi3+ into the matrix lattice changes the microstructure and particle size of the crystal. The photoluminescence spectra show that at 6% Bi3+ doping, the red and green emission intensities are enhanced by 12 and 8 times, respectively. The reason could be the lattice distortion caused by Bi3+ doping, breaking the partial forbidden transition of rare‐earth ions. The fluorescence lifetime measurement reveals that the Bi3+ doping changes the environment around erbium ions, affecting the energy level lifetime of erbium ions, explaining the luminescence dynamics law. The present study provides a facile route to achieve nano/microstructures with intense upconversion luminescence with potential applications in optoelectronic devices.
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Abstract The low luminous efficiency of upconversion materials limits their practical applications in various fields. The present study focuses on the efficient upconversion enhancement of β‐NaYF4:Yb,Er induced by Bi3+ doping. The XRD and SEM results show that introducing Bi3+ into the matrix lattice changes the microstructure and particle size of the crystal. The photoluminescence spectra show that at 6% Bi3+ doping, the red and green emission intensities are enhanced by 12 and 8 times, respectively. The reason could be the lattice distortion caused by Bi3+ doping, breaking the partial forbidden transition of rare‐earth ions. The fluorescence lifetime measurement reveals that the Bi3+ doping changes the environment around erbium ions, affecting the energy level lifetime of erbium ions, explaining the luminescence dynamics law. The present study provides a facile route to achieve nano/microstructures with intense upconversion luminescence with potential applications in optoelectronic devices.
Key concepts: Photoluminescence, Photon upconversion, Doping, Materials science, Erbium, Luminescence, Ion, Microstructure