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Beilstein J. Nanotechnol. 2015, 6, 529–536, doi:10.3762/bjnano.6.55
Figure 1: FTIR spectra of (a) PVA (b) PVA–ZnS.
Figure 2: Illustration of hydrolyzed PVA.
Figure 3: TEM images of ZnS NPs within PVA matrix at (a) 10 kGy, (b) 30 kGy and (c) 50 kGy dose.
Figure 4: XRD pattern of ZnS NPs mediated by PVA from 10 to 50 kGy doses.
Figure 5: Optical spectra of ZnS–PVA nanofluids synthesized at various doses.
Figure 6: Optical band gap energy of ZnS NPs after irradiation with doses of 10 to 50 kGy.
Figure 7: Trend of (a) thermal conductivity and (b) thermal effusivity of the PVA solution (0 kGy) and ZnS na...
Figure 8: A typical PA signal as a modulation of frequency for (a) water and ethylene glycol, (b) ZnS–PVA nan...
Beilstein J. Nanotechnol. 2012, 3, 817–823, doi:10.3762/bjnano.3.91
Figure 1: (a) AFM topographic images depicting a series of oxide protrusions produced by applying various vol...
Figure 2: AFM topography image of the final structure.
Figure 3: (a) Isometric view of the simulated device. (b) Blow up view of the gated area and different nanowi...
Figure 4: (a) SEM image of the gated area. (b) Experimental measurement and simulated transfer characteristic...
Figure 5: Hole concentration for a vertical cut of DGJLT at (X = −100 nm) for four different gate voltages (a...
Figure 6: (a) Hole density and (b) electron density distribution as a function of position along a horizontal...
Figure 7: Simulated (a) parallel and (b) normal electric field along a horizontal cut line at the center of t...