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Updated: May 23, 2026

Synthesis and Calibration of Phosphorescent Nanoprobes for Oxygen Imaging in Biological Systems
Published on: March 3, 2010
Optically stable biocompatible flame-made SiO2-coated Y2O3:Tb3+ nanophosphors for cell imaging
Georgios A Sotiriou1, Davide Franco, Dimos Poulikakos
1Particle Technology Laboratory, Institute of Process Engineering, Institute of Energy Technology Department of Mechanical and Process Engineering, ETH Zurich, Sonneggstrasse 3, 8092 Zurich, Switzerland. sotiriou@ptl.mavt.ethz.ch
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Nanophosphors are light-emitting materials with stable optical properties that represent promising tools for bioimaging. The synthesis of nanophosphors, and thus the control of their surface properties, is, however, challenging. Here, flame aerosol technology is exploited to generate Tb-activated Y(2)O(3) nanophosphors (∼25 nm) encapsulated in situ by a nanothin amorphous inert SiO(2) film. The nanocrystalline core exhibits a bright green luminescence following the Tb(3+) ion transitions, while the hermetic SiO(2)-coating prevents any unspecific interference with cellular activities. The SiO(2)-coated nanophosphors display minimal photobleaching upon imaging and can be easily functionalized through surface absorption of biological molecules. Therefore, they can be used as bionanoprobes for cell detection and for long-term monitoring of cellular activities. As an example, we report on the interaction between epidermal growth factor (EGF)-functionalized nanophosphors and mouse melanoma cells. The cellular uptake of the nanophosphors is visualized with confocal microscopy, and the specific activation of EGF receptors is revealed with biochemical techniques. Altogether, our results establish SiO(2)-coated Tb-activated Y(2)O(3) nanophosphors as superior imaging tools for biological applications.

