4.6 Article

Thermal enhancement of upconversion emission in nanocrystals: a comprehensive summary

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出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0cp05069e

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资金

  1. Portuguese funds through the FCT/MEC [UIDB/50011/2020, UIDP/50011/2020]
  2. FEDER under the PT2020 Partnership Agreement
  3. project NanoHeatControl - FEDER, through POCI [POCI-01-0145-FEDER-031469]
  4. Portuguese funds (OE), through FCT/MCTES
  5. European Union's Horizon 2020 FET Open program [801305]
  6. National Agency for the Promotion of Science and Technology (ANPCyT) [PICT 2017-0307]

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The luminescence thermal stability of lanthanide-doped nanoparticles is crucial for their potential applications in advanced optics, with thermal quenching generally considered inevitable as temperature increases. However, recent research on thermally enhanced upconversion luminescence has challenged this notion, sparking wide interest in the field. While the key mechanism of luminescence enhancement is still debated, it is recognized as a form of recovery process against prior strong luminescence quenching effects.
Luminescence thermal stability is a major figure of merit of lanthanide-doped nanoparticles playing an essential role in determining their potential applications in advanced optics. Unfortunately, considering the intensification of multiple electron-vibration interactions as temperature increases, luminescence thermal quenching of lanthanide-doped materials is generally considered to be inevitable. Recently, the emergence of thermally enhanced upconversion luminescence in lanthanide-doped nanoparticles seemed to challenge this stereotype, and the research on this topic rapidly aroused wide attention. While considerable efforts have been made to explore the origin of this phenomenon, the key mechanism of luminescence enhancement is still under debate. Here, to sort out the context of this intriguing finding, the reported results on this exciting topic are reviewed, and the corresponding enhancement mechanisms as proposed by different researchers are summarized. Detailed analyses are provided to evaluate the contribution of the most believed surface-attached moisture desorption process on the overall luminescence enhancement of lanthanide-doped nanoparticles at elevated temperatures. The impacts of other surface-related processes and shell passivation on the luminescence behaviour of the lanthanide-doped materials are also elaborated. Lack of standardization in the reported data and the absence of important experimental information, which greatly hinders the cross-checking and reanalysis of the results, is emphasized as well. On the foundation of these discussions, it is realized that the thermal-induced luminescence enhancement is a form of recovery process against the strong luminescence quenching in the system, and the enhancement degree is closely associated with the extent of luminescence loss induced by various quenching effects beforehand.

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