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Beilstein J. Nanotechnol. 2017, 8, 1705–1713, doi:10.3762/bjnano.8.171
Figure 1: Structure of (a) PPIX and (b) SQ2; (c) normalized absorption spectra of PPIX in DMSO and SQ2 in eth...
Figure 2: (a) Spectral overlap between the emission of PPIX and the absorption of SQ2, (b) The picosecond-res...
Figure 3: (a) Dye cocktail solutions and dye-sensitized TiO2 photoanodes with different molar ratios of SQ2 a...
Figure 4: (a) Fluorescence decay profiles of PPIX (red) and PPIX attached to TiO2 (green), (b) fluorescence d...
Figure 5: (a) I–V characteristics and (b) wavelength-dependent photocurrent of DSSCs sensitized with differen...
Figure 6: (a) I–V characteristics and (b) wavelength-dependent photocurrent response of the DSSCs with one-by...
Beilstein J. Nanotechnol. 2014, 5, 365–373, doi:10.3762/bjnano.5.42
Figure 1: AFM images of xanthan scaffold A) in air, B) in isopropanol. C) Height histograms of xanthan scaffo...
Figure 2: Typical force curves with different number of rupture events. A) Single event. B) Double events. C)...
Figure 3: A) Schematic diagram of the superposition of force curves with single events. B) Distributions of r...
Figure 4: A) Typical “type 1” (t1) force curve fitted with the WLC model. The inset is the model proposed to ...
Figure 5: A,B) Typical single stretching event with one and two kinks (type 2), the insets are the proposed m...
Figure 6: A) Typical double-peak force curve. B) “type 3” (t3) force curve. C,D) histograms of the difference...
Figure 7: Mechanical responses composited by different type force curves. A) t1 + t2. B) t2 + t3. C) t1 + t3....