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The versatility of lanthanide-doped near-infrared (NIR, 700-1,700 nm) luminescent nanoparticles makes them valuable tools in various scientific and technological fields, from bioimaging to information security. However, the luminescence intensity of typical lanthanide-doped nanoparticles is significantly influenced by the efficiency of the sensitizer. The introduction of transition metal ions (such as Cr, Mn and Ni) can greatly enrich the library of lanthanide NIR luminescence nanoparticles. We have reported a new crystalline nanoparticle, NaCrF, for high-brightness NIR emission from lanthanide activators (such as Er, Tm, Yb or Nd). As an emerging luminescent material, a straightforward and scalable synthesis approach for these nanostructures holds promise for their broader application. Here we have refined and standardized the steps for transition metal-sensitized lanthanide luminescent nanoparticles, thereby establishing a library of advanced luminescent materials for researchers engaged in luminescent materials. The Protocol enables the precise preparation of chromium-, manganese- and nickel-trifluoroacetate, the synthesis of three types of transition metal-sensitized lanthanide nanoparticle and the fabrication of chromium-sensitized lanthanide homogeneous and heterogeneous nanostructure. Moreover, we provide verification protocols for each step's output and guidelines for adjusting synthesis conditions. To aid in the reproducible synthesis of these nanoparticles, we also include a troubleshooting guide of the various stages. The estimated duration for synthesizing transition metal trifluoroacetate, transition metal-sensitized lanthanide nanoparticles and core-shell transition metal-sensitized lanthanide nanoparticles are ~70, 30 and 30 h, respectively. These procedures can be carried out by users with expertise in chemistry or materials science.
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http://dx.doi.org/10.1038/s41596-025-01245-6 | DOI Listing |
Nat Protoc
September 2025
Department of Chemistry, State Key Laboratory of Molecular Engineering of Polymers, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials and iChem, Fudan University, Shanghai, People's Republic of China.
The versatility of lanthanide-doped near-infrared (NIR, 700-1,700 nm) luminescent nanoparticles makes them valuable tools in various scientific and technological fields, from bioimaging to information security. However, the luminescence intensity of typical lanthanide-doped nanoparticles is significantly influenced by the efficiency of the sensitizer. The introduction of transition metal ions (such as Cr, Mn and Ni) can greatly enrich the library of lanthanide NIR luminescence nanoparticles.
View Article and Find Full Text PDFPLoS One
October 2019
Department of Orthopedic Surgery, Rush University Medical Center, Chicago, IL, United States of America.
Metal hypersensitivity has been recognized as an adverse biologic reaction that can compromise total joint arthroplasty (TJA) performance. However, the etiology of metal hypersensitivity responses in TJAs remains unclear. Metal implant debris is known to act as a danger signal that drives NLRP3 inflammasome activation.
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