Materials with near-infrared (NIR) persistent luminescence (PersL) and NIR-to-NIR photostimulated luminescence (PSL) properties are attractive platforms for photonic energy harvesting and release. In this work, we develop MgSnO:Cr as a broadband NIR PersL and NIR-to-NIR PSL material (luminescence maxima at ∼800 nm) and reveal the origin of the PersL and PSL properties. The material has an inverse spinel structure with the Mg and Sn disorder at the Wyckoff 16d site based on the Rietveld refinement. Cr K-edge X-ray absorption near-edge structure (XANES) spectra uncover that the doped Cr ions have a +3 valence state and occupy the disordered (Mg,Sn) site with octahedral coordination. The disorder results in multiple Cr centers, and the broadband luminescence originates from the T(F) → A transition of Cr at sites with intermediate crystal field strength. The distribution of trap depths is continuous according to the analysis of thermoluminescence (TL) spectra using the initial rising method, which relates to the random distribution of Mg and Sn at the second coordination sphere of the Cr centers rather than the oxygen-related defects. Stimulating the material with a NIR laser, the NIR PersL gets significantly enhanced due to a PSL process. The broadband PersL and PSL are detectable beyond 100 h and have good tissue penetrability and therefore the developed MgSnO:Cr has potential in applications of optical information storage/reading and autofluorescence-free bioimaging. Finally, three crystal and electronic structure factors are proposed for screening new Cr-activated PersL and PSL materials.
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http://dx.doi.org/10.1021/acs.inorgchem.0c02941 | DOI Listing |
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December 2024
CNRS, IRCP, Institut de Recherche de Chimie Paris, Chimie ParisTech, PSL University, Paris, 75005, France.
Nanomaterials (Basel)
July 2023
Chimie ParisTech, CNRS, Institut de Recherche de Chimie Paris (IRCP), Université PSL, 75005 Paris, France.
Near-infrared (NIR) persistent luminescence (PersL) materials have demonstrated promising developments for applications in many advanced fields due to their unique optical properties. Both high-temperature solid-state (SS) or hydrothermal (HT) methods can successfully be used to prepare PersL materials. In this work, ZnGaSnO:0.
View Article and Find Full Text PDFInorg Chem
February 2021
Guangdong Province Key Laboratory of Rare Earth Development and Application, Institute of Rare Metals, Guangdong Academy of Sciences, Guangzhou 510651, China.
Materials with near-infrared (NIR) persistent luminescence (PersL) and NIR-to-NIR photostimulated luminescence (PSL) properties are attractive platforms for photonic energy harvesting and release. In this work, we develop MgSnO:Cr as a broadband NIR PersL and NIR-to-NIR PSL material (luminescence maxima at ∼800 nm) and reveal the origin of the PersL and PSL properties. The material has an inverse spinel structure with the Mg and Sn disorder at the Wyckoff 16d site based on the Rietveld refinement.
View Article and Find Full Text PDFInorg Chem
May 2018
Graduate School of Human and Environmental Studies , Kyoto University, Kyoto 606-8501 , Japan.
Persistent luminescence (PersL) imaging without real-time external excitation has been regarded as the next generation of autofluorescence-free optical imaging technology. However, to achieve improved imaging resolution and deep tissue penetration, developing new near-infrared (NIR) persistent phosphors with intense and long duration PersL over 1000 nm is still a challenging but urgent task in this field. Herein, making use of the persistent energy transfer process from Cr to Er, we report a novel garnet persistent phosphor of YAlGaO codoped with Er and Cr (YAG G:Er-Cr), which shows intense Cr PersL (∼690 nm) in the deep red region matching well with the first biological window (NIR-I, 650-950 nm) and Er PersL (∼1532 nm) in the NIR region matching well with the third biological window (NIR-III, 1500-1800 nm).
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