Photon avalanching nanoparticles (ANPs) exhibit extremely nonlinear upconverted emission valuable for subdiffraction imaging, nanoscale sensing, and optical computing. Avalanching has been demonstrated with Tm-, Pr-, or Nd-doped nanocrystals, but their emission is limited to a few wavelengths and materials. Here, we utilize Gd-assisted energy migration to tune the emission wavelengths of Tm-sensitized ANPs and generate highly nonlinear emission from Eu, Tb, Ho, and Er ions. The upconversion intensities of these spectrally discrete ANPs scale with nonlinearity factor = 10-17 under 1064 nm excitation at power densities as low as 7 kW cm. This strategy for imprinting avalanche behavior on remote emitters can be extended to fluorophores adjacent to ANPs, as we demonstrate with CdS/CdSe/CdS core/shell/shell quantum dots. ANPs with rationally designed energy transfer networks provide the means to transform conventional linear emitters into a highly nonlinear ones, expanding the use of photon avalanching in biological, chemical, and photonic applications.
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http://dx.doi.org/10.1021/acs.nanolett.3c01955 | DOI Listing |
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