4.8 Article

Role of Magnetic Coupling in Photoluminescence Kinetics of Mn2+-Doped ZnS Nanoplatelets

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 14, 期 16, 页码 18806-18815

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c25191

关键词

colloidal synthesis; ZnS nanoplatelets; Mn2+ doping; photoluminescence; time-resolved spectroscopy; DFT calculations

资金

  1. China Scholarship Council (CSC)
  2. Deutsche Forschungsgemeinschaft via the Research Training Group Nanohybrid [GRK2536/1]
  3. European Regional Development Fund of the European Union [GHS-20-0035/P000376218, GHS-20-0036/P000379642]
  4. German Research Foundation (Deutsche Forschungsgemeinschaft) [SFB 1477, DFG INST 264/161-1 FUGG]
  5. Cluster of Excellence 'The Hamburg Centre for Ultrafast Imaging' of the Deutsche Forschungsgemeinschaft (DFG) [EXC 1074, 194651731]

向作者/读者索取更多资源

Investigation on Mn2+-doped semiconductor nanocrystals with tuned location and concentration of Mn2+ ions has shown that the optical properties, such as emission wavelength and photoluminescence lifetime, are highly influenced by these factors. Atomically flat ZnS nanoplatelets were used as matrixes for Mn2+ doping, revealing a connection between coupling and PL kinetics of Mn2+ ions through time-resolved PL spectroscopy and DFT calculations. It was found that Mn2+ ions residing on the surface of a nanostructure produce emissive states and interfere with the change of properties by Mn2+-Mn2+ coupling, with the physical reasons for double and triple exponential decay being explained by DFT methods.
Mn2+-doped semiconductor nanocrystals with tuned location and concentration of Mn2+ ions can yield diverse coupling regimes, which can highly influence their optical properties such as emission wavelength and photoluminescence (PL) lifetime. However, investigation on the relationship between the Mn2+ concentration and the optical properties is still challenging because of the complex interactions of Mn2+ ions and the host and between the Mn2+ ions. Here, atomically flat ZnS nanoplatelets (NPLs) with uniform thickness were chosen as matrixes for Mn2+ doping. Using time-resolved (TR) PL spectroscopy and density functional theory (DFT) calculations, a connection between coupling and PL kinetics of Mn2+ ions was established. Moreover, it is found that the Mn2+ ions residing on the surface of a nanostructure produce emissive states and interfere with the change of properties by Mn2+-Mn2+ coupling. In a configuration with suppressed surface contribution to the optical response, we show the underlying physical reasons for double and triple exponential decay by DFT methods. We believe that the presented doping strategy and simulation methodology of the Mn2+-doped ZnS (ZnS:Mn) system is a universal platform to study dopant location- and concentration-dependent properties also in other semiconductors.

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