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Local Structure Engineering in Lanthanide-Doped Nanocrystals for Tunable Upconversion Emissions

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 143, Issue 49, Pages 20546-20561

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.1c10425

Keywords

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Funding

  1. National Natural Science Foundation of China [21931001, 22031002, 21927901, 21771005]
  2. Ministry of Science and Technology of the People's Republic of China [2017YFA0205101, 2017YFA0205104]

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Research on upconversion emissions from lanthanide-doped nanocrystals has attracted significant interest in various fields. Rational modulation of upconversion emissions is essential for meeting specific application requirements. Local structure engineering offers a feasible method for tuning upconversion emissions by adjusting emission intensity, selectivity, wavelength shift, and lifetime through control of local structure.
Upconversion emissions from lanthanide-doped nanocrystals have sparked extensive research interests in nanophotonics, biomedicine, photovoltaics, photocatalysis, etc. Rational modulation of upconversion emissions is highly desirable to meet the requirements of specific applications. Among the diverse developed methods, local structure engineering is fundamentally feasible, through which the upconversion emission intensity, selectivity, wavelength shift, and lifetime can be tuned effectively. The underlying mechanism of the local-structure-dependent upconversion emissions lies in the degree of parity hybridization and energy level splitting of lanthanide ions as well as the interionic energy transfer efficiency. Over the past few years, there has been significant progress in local-structure-engineered upconversion emissions. In this Perspective, we first introduce the principles of upconversion emissions and typical characterization methods for local structure. Subsequently, we summarize recent achievements in tuning of upconversion emissions through local structure engineering, including host composition adjustment, external field regulation, and interfacial strain management. Finally, we propose a few perspectives that should tackle the current bottlenecks. This Perspective is expected to deepen the understanding of local-structure-dependent upconversion emissions and arouse adequate attention to the engineering of local structure for desired properties of inorganic nanocrystals.

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