Boosting Dye-Sensitized Luminescence by Enhanced Short-Range Triplet Energy Transfer.

Zhao, Fei; Hu, Jialing; Guan, Daoming; Liu, Jinyang; Zhang, Xuebo; Ling, Huan; Zhang, Yunxiang; Liu, Qian · Adv Mater · 2023

basic_science · Level V

Where this comes from

Abstract

Dye-sensitization can enhance lanthanide-based upconversion luminescence, but is hindered by interfacial energy transfer from organic dye to lanthanide ion Yb<sup>3+</sup> . To overcome these limitations, modifying coordination sites on dye conjugated structures and minimizing the distance between fluorescence cores and Yb<sup>3+</sup> in upconversion nanoparticles (UCNPs) are proposed. The specially designed near-infrared (NIR) dye, disulfo-indocyanine green (disulfo-ICG), acts as the antenna molecule and exhibits a 2413-fold increase in luminescence under 808 nm excitation compared to UCNPs alone using 980 nm irradiation. The significant improvement is attributed to the high energy transfer efficiency of 72.1% from disulfo-ICG to Yb<sup>3+</sup> in UCNPs, with majority of energy originating from triplet state (T<sub>1</sub> ) of disulfo-ICG. Shortening the distance between the dye and lanthanide ions increases the probability of energy transfer and strengthens the heavy atom effect, leading to enhanced T<sub>1</sub> generation and improved dye-triplet sensitization upconversion. Importantly, this approach also applies to 730 nm excitation Cy7-SO<sub>3</sub> sensitization system, overcoming the spectral mismatch between Cy7 and Yb<sup>3+</sup> and achieving a 52-fold enhancement in luminescence. Furthermore, the enhancement of upconversion at single particle level through dye-sensitization is demonstrated. This strategy expands the range of NIR dyes for sensitization and opens new avenues for highly efficient dye-sensitized upconversion systems.