Literature DB >> 35068693

Mn-Doped AgZnInS/ZnS Nanocrystals (NCs): Effects of Zn Etching on the NC Optical Properties.

Bryan Lee1,2, Tristan Hegseth1, Yusheng Song3, Jialong Zhao3, Xiaoshan Zhu1,2.   

Abstract

Mn-doped I(II)-III-VI NCs (e.g., Mn-doped AgZnInS/ZnS NCs) possessing low-energy excitation, high brightness and long fluorescence lifetimes have been desired for time-gated fluorescence biosensing/imaging. In this type of NCs, their optical properties are significantly affected by the microscopic interactions between Mn and Mn and between Mn and host NC, the compositions of NCs, and the defects in NCs. On the other hand, it is known that Zn etching to core I(II)-III-VI NCs in NC synthesis can significantly enhance the NC brightness because Zn can exchange surface atoms (e.g., Ag and In) in NCs to minimize NC surface-defects. But for Mn-doped I(II)-III-VI NCs, Zn etching could etch out not only surface-atoms of host NCs (e.g., Ag and In) but also Mn in NCs. As a result, it could significantly affect the NC compositions and the microscopic interactions between Mn and Mn as well as between Mn and host NC, and thus the optical properties of NCs (like lifetime and absorption/emission spectra). Therefore, it is needed to investigate how Zn etching would affect the optical properties of such Mn-doped NCs. In this study, a series of Mn-doped AgZnInS NCs with different Mn doping levels were prepared through nucleation doping, and then Zn etching was applied to etch these core NCs. To identify the effects of Zn etching on NC optical properties, ZnS coating (a different ZnS shelling approach by injecting Zn precursor and S precursor alternately in synthesis) was performed on the same Mn:AgZnInS NCs, and the optical properties of NCs with these two different ZnS shelling approaches were compared. Experimental results showed that under appropriate Mn doping levels in synthesis, Zn etching instead of ZnS coating can produce low-energy excitable NCs with higher QYs and longer lifetimes, which would further facilitate the use of such NCs in time-gated fluorescence measurement. To understand the reasons for the different optical properties under different ZnS shelling approaches, the material characteristics of the prepared NCs were further measured/analyzed and the possible fluorescence mechanisms were discussed.

Entities:  

Keywords:  AgZnInS/Zn nanocrystals; Mn doping; Zn etching; time-gated fluorescence

Year:  2021        PMID: 35068693      PMCID: PMC8775054          DOI: 10.1016/j.optmat.2021.111941

Source DB:  PubMed          Journal:  Opt Mater (Amst)        ISSN: 0925-3467            Impact factor:   3.080


  27 in total

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7.  New Insights into Mn-Mn Coupling Interaction-Directed Photoluminescence Quenching Mechanism in Mn2+-Doped Semiconductors.

Authors:  Yong Liu; Jiaxu Zhang; Bing Han; Xiang Wang; Zhiqiang Wang; Chaozhuang Xue; Guoqing Bian; Dandan Hu; Rui Zhou; Dong-Sheng Li; Zhenxing Wang; Zhongwen Ouyang; Mingde Li; Tao Wu
Journal:  J Am Chem Soc       Date:  2020-03-16       Impact factor: 15.419

8.  Mn Doped AZIS/ZnS Nanocrystals (NCs): Effects of Ag and Mn Levels on NC Optical Properties.

Authors:  Masoumeh Saber Zaeimian; Brandon Gallian; Clay Harrison; Yu Wang; Jialong Zhao; Xiaoshan Zhu
Journal:  J Alloys Compd       Date:  2018-06-19       Impact factor: 5.316

9.  Mn Doped AIZS/ZnS Nanocrystals: Synthesis and Optical Properties.

Authors:  Siqi Chen; Masoumeh Saber Zaeimian; Jorge H S K Monteiro; Jialong Zhao; Athanasios G Mamalis; Ana de Bettencourt-Dias; Xiaoshan Zhu
Journal:  J Alloys Compd       Date:  2017-07-28       Impact factor: 5.316

10.  Reduced background autofluorescence for cell imaging using nanodiamonds and lanthanide chelates.

Authors:  Nicole M Cordina; Nima Sayyadi; Lindsay M Parker; Arun Everest-Dass; Louise J Brown; Nicolle H Packer
Journal:  Sci Rep       Date:  2018-03-14       Impact factor: 4.379

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