4.8 Article

Energy-Cascaded Upconversion in an Organic Dye-Sensitized Core/Shell Fluoride Nanocrystal

Journal

NANO LETTERS
Volume 15, Issue 11, Pages 7400-7407

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.5b02830

Keywords

Upconversion; Dye-Sensitized; Rare-Earth; Lanthanide; Core/Shell; Nanoparticles

Funding

  1. Air Force Office of Scientific Research [1096313-1-58130]
  2. National Science Fund for Distinguished Young Scholars [51325201]
  3. International Cooperation Project in the Ministry of Science and Technology [2014DFA50740]
  4. Program for Basic Research Excellent Talents in Harbin Institute of Technology, China [BRETIII 2012018]
  5. Fundamental Research Funds for the Central Universities, China [AUGA5710052614]

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Lanthanide-doped upconversion nanoparticles hold promises for bioimaging, solar cells, and volumetric displays. However, their emission brightness and excitation wavelength range are limited by the weak and narrowband absorption of lanthanide ions. Here, we introduce a concept of multistep cascade energy transfer, from broadly infrared-harvesting organic dyes to sensitizer ions in the shell of an epitaxially designed core/shell inorganic nanostructure, with a sequential nonradiative energy transfer to upconverting ion pairs in the core. We show that this concept, when implemented in a core-shell architecture with suppressed surface-related luminescence quenching, yields multiphoton (three-, four-, and five-photon) upconversion quantum efficiency as high as 19% (upconversion energy conversion efficiency of 9.3%, upconversion quantum yield of 4.8%), which is about similar to 100 times higher than typically reported efficiency of upconversion at 800 nm in lanthanide-based nanostructures, along with a broad spectral range (over 150 nm) of infrared excitation and a large absorption cross-section of 1.47 X 10(-14) cm(2) per single nanoparticle. These features enable unprecedented three-photon upconversion (visible by naked eye as blue light) of an incoherent infrared light excitation with a power density comparable to that of solar irradiation at the Earth surface, having implications for broad applications of these organic-inorganic core/shell nanostructures with energy-cascaded upconversion.

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