Dye-to-Er<sup>3+</sup> Direct Energy Transfer for Enhancing Up- and Down-conversion Luminescence in Sub-10 nm NaErF<sub>4</sub>.
basic_science · Level V
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- Record sourced from PubMed, PMID 39530389.
- Also identified by DOI 10.1021/acs.nanolett.4c04539.
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Abstract
Dye sensitization enhances the luminescence of lanthanide nanoparticles by improving light-harvesting. Typically, Yb<sup>3+</sup> serves as an energy bridge but absorbs at a single transition, limiting dyes' options (λ<sub>ex</sub> > 700 nm) due to the spectral overlap requirement. In contrast, the emitter Er<sup>3+</sup> spans energy levels from UV to NIR, making it ideal for multicolor excitation. We developed a strategy to directly sensitize Er<sup>3+</sup> upconversion (UCL) and downconversion luminescence (DCL) by using cyanine dyes. Cy5 demonstrated the greatest enhancement, achieving a 1942-fold UCL and 70-fold DCL increase compared to nanoparticles alone (Er-NPs) under 980 nm excitation. Smaller Er-NPs exhibited brighter dye-sensitized luminescence due to enhanced interfacial energy transfer. A 2 nm inert shell produced the brightest UCL, while thicker shells improved DCL. Dye-sensitized Er<sup>3+</sup> emissions at <sup>2</sup>H<sub>11/2</sub> (525 nm) and <sup>2</sup>P<sub>3/2</sub> (408 nm) enabled temperature monitoring with a maximum sensitivity (<i>S</i><sub>a</sub>) of 3.69%/K. This approach holds significant potential for optical temperature sensing and medical imaging.