Energy transfer plays a pivotal role in applying lanthanide doped upconversion nanoparticles as optical probes for diverse applications, particularly in biology and medicine. However, achieving tunable energy transfer from upconversion… Click to show full abstract
Energy transfer plays a pivotal role in applying lanthanide doped upconversion nanoparticles as optical probes for diverse applications, particularly in biology and medicine. However, achieving tunable energy transfer from upconversion nanoparticles to different acceptors remains a daunting challenge. Here, we demonstrate that using small organic molecules as linkers, the energy transfer from upconversion nanoparticles to acceptors can be modulated. Specifically, organic linkers can enable efficient energy transfer from NaGdF4:Yb/Tm@NaGdF4 core-shell upconversion nanoparticles to different acceptors. Moreover, the organic linker mediated energy transfer can be facilely tuned by simply changing organic linkers. Based on our mechanistic investigations, the extraction of Gd3+ migrated energy from upconversion nanoparticles by organic linkers and the subsequent energy injection from linkers to acceptors should be the two key processes for controlling the energy transfer. The tunable energy extraction from upconversion nanoparticles allows us to design novel applications, including sensors and optical waveguides, based on upconversion nanoparticles. These findings may open up new ways to develop upconversion nanoparticle based bioapplications and advance further fabrication of hybrid upconversion nanomaterials.
               
Click one of the above tabs to view related content.