| Literature DB >> 28496204 |
Qingqing Jin1, Amu Gubu1, Xiuxian Chen1, Xinjing Tang2.
Abstract
A photochemical avenue to synthesize nitrogen-rich quantumEntities:
Mesh:
Year: 2017 PMID: 28496204 PMCID: PMC5431983 DOI: 10.1038/s41598-017-01663-x
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Synthesis of N-dots. (b) Digital image (left) of 1.0 mg/mL N-dots in water and its photoluminescence image (right) under hand-held UV lamp (365 nm).
Figure 2The photoluminescence emission spectra of N-dots produced at different UV-irradiation intensities: (a) 20, (b) 30, and (c) 50 mW/cm2.
Figure 3(a) TEM image of the N-dots (inset shows the HRTEM image) and (b) size distribution histograms of N-dots based on TEM.
Figure 4(a) FTIR spectrum (at 50 mW/cm2) and (b) XPS survey spectrum of the photogenerated solid N-dots.
Figure 5(a) Proposed mechanism for the formation of N-dots and In situ IR spectra of a 10 mg/mL solution of 2-azido imidazole in methanol in the (b) photochemical and (c) thermal N-dot formation methods; (d,e) the typical IR spectra for (b) and (c), respectively, at different times.
Figure 6(a) Upconversion photoluminescence spectra of an aqueous solution of N-dots at various excitation wavelengths and (b) Integration of the area under the photoluminescence peaks at the excitation wavelengths of 730–950 nm in (a).
Figure 7Representative upconversion photoluminescence images of RAW 264.7 cells incubated with N-dots (0.5 mg/mL) for 6 h at 37 °C. (a) Bright field image, (b,c) photoluminescence images obtained at (b) 425–475 nm and (c) 500–550 nm under 770 nm excitation, (d) superimposed image of (b) and (c). Scale bar: 20 µm.