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The elemental composition and oxidation states of the fewlayer WS2/Bi2MoO6 composites were further determined by XPS spectra.
Mechanical properties of polypropylene composites were further investigated.
The composites were further characterized by fourier transformed infrared spectroscopy (FTIR) and X-ray diffraction (XRD).
The MWCNTs/Cu composites were further treated by cold rolling leading to directional alignment of MWCNTs in the matrix.
Structure and morphology of the ternary composites were further characterized by TEM, XRD, FTIR and FE-SEM techniques.
The increased pore volumes (0.56, 0.69 and 0.93 cm3.g−1) in the composites were further evidence that the amount of SBA-15 was increased within the nanocomposite as the loading was increased.
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This osteogenic activity mediated by rGO/HAp composites was further accelerated under osteogenic culture conditions.
Moreover, to further improve their electrochemical performances, these composites are further wrapped by graphene nanosheets through a stepwise heterocoagulation method.
The underlying ductile nature of the composites is further correlated with the unique electronic structure of the B2 CuZr intermetallics.
The composites are further tested for hydrogen storage capability under assist of the PMN-PT (single crystal lead magnesium niobate lead titanate) generated electric field.
The ACA-500-S and ACA-500-S@PANi composites are further characterized by XRD and Raman (Fig. 3). Figure 3a shows the XRD patterns of pure sulfur, ACA-500, ACA-500-S, and ACA-500-S@PANi composites, respectively.
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