4.8 Article

Graphitic Nitrogen Triggers Red Fluorescence in Carbon Dots

期刊

ACS NANO
卷 11, 期 12, 页码 12402-12410

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.7b06399

关键词

nitrogen-doped; graphene dots; red fluorescence; fluorescence mechanism; band-gap tuning

资金

  1. Ministry of Education, Youth and Sports of the Czech Republic [LO1305, CZ.1.05/2.1.00/19.0377, LM2015073]
  2. Palackcr University Olomouc [IGA_PrF_2017_025]
  3. Czech Science Foundation [P208/12/G016]
  4. NPRP Grant from the Qatar National Research Fund [8-878-1-172]

向作者/读者索取更多资源

Carbon dots (CDs) are a stable and highly biocompatible fluorescent material offering great application potential in cell labeling, optical imaging, LED diodes, and optoelectronic technologies. Because their emission wavelengths provide the best tissue penetration, red emitting CDs are of particular interest for applications in biomedical technologies. Current synthetic strategies enabling red-shifted emission include increasing the CD particle size (sp(2) domain) by a proper synthetic strategy and tuning the surface chemistry of CDs with suitable functional groups (e.g., carboxyl). Here we present an elegant route for preparing full-color CDs with well-controllable fluorescence at blue, green, yellow, or red wavelengths. The two-step procedure involves the synthesis of a full-color-emitting mixture of CDs from citric acid and urea in formamide followed by separation of the individual fluorescent fractions by column chromatography based on differences in CD charge. Red-emitting CDs, which had the most negative charge, were separated as the last fraction. The trend in the separation, surface charge, and red-shift of photoluminescence was caused by increasing amount of graphitic nitrogen in the CD structure, as was clearly proved by XPS, FT-IR, Raman spectroscopy, and DFT calculations. Importantly, graphitic nitrogen generates midgap states within the HOMO-LUMO gap of the undoped systems, resulting in significantly red-shifted light absorption that in turn gives rise to fluorescence at the low energy end of the visible spectrum. The presented findings identify graphitic nitrogen as another crucial factor that can red shift the CD photoluminescence.

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