X-ray excited luminescence spectroscopy and imaging with NaGdF:Eu and Tb

X-ray excited optical luminescence from nanophosphors can be used to selectively generate light in tissue for imaging and stimulating light-responsive materials and cells. Herein, we synthesized X-ray scintillating NaGdF 4 :Eu and Tb nanophosphors via co-precipitate and hydrothermal methods, encapsu...

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Veröffentlicht in:RSC advances 2021-09, Vol.11 (5), p.31717-31726
Hauptverfasser: Ranasinghe, Meenakshi, Arifuzzaman, Md, Rajamanthrilage, Apeksha C, Willoughby, W. R, Dickey, Ashley, McMillen, Colin, Kolis, Joseph W, Bolding, Mark, Anker, Jeffrey N
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Zusammenfassung:X-ray excited optical luminescence from nanophosphors can be used to selectively generate light in tissue for imaging and stimulating light-responsive materials and cells. Herein, we synthesized X-ray scintillating NaGdF 4 :Eu and Tb nanophosphors via co-precipitate and hydrothermal methods, encapsulated with silica, functionalized with biotin, and characterized by X-ray excited optical luminescence spectroscopy and imaging. The nanophosphors synthesized by co-precipitate method were ∼90 and ∼106 nm in diameter, respectively, with hydrothermally synthesized particles showing the highest luminescence intensity. More importantly, we investigated the effect of thermal annealing/calcination on the X-ray excited luminescence spectra and intensity. At above 1000 °C, the luminescence intensity increased, but particles fused together. Coating with a 15 nm thick silica shell prevented particle fusion and enabled silane-based chemical functionalization, although luminescence decreased largely due to the increased mass of non-luminescent material. We observed an increase in luminesce intensity with temperature until at 400 °C. At above 600 °C, NaGdF 4 :Eu@SiO 2 converts to NaGd 9 Si 6 O 26 :Eu, an X-ray scintillator brighter than annealed NPs at 400 °C and dimmer than NPs synthesized using the hydrothermal method. The particles generate light through tissue and can be selectively excited using a focused X-ray source for imaging and light generation applications. The particles also act as MRI contrast agents for multi-modal localization. We synthesized and characterized Eu and Tb doped NaGdF 4 nanophosphors which generate visible light when excited by a focused X-ray beam. High resolution images were acquired through tissue by measuring light intensity vs. X-ray beam position.
ISSN:2046-2069
DOI:10.1039/d1ra05451a