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The average properties of the 200-nm thickness interphase region between fiber and matrix are characterized through MD simulations and an analytical gradient model.
The bonding conditions between the particles and the matrix are characterized by the existence of a jump in the displacement which is proportional to the traction transmitted across the interface.
Using atomistic simulations, the thickness and the average density of interphase matrix are determined and the elastic properties of amorphous interphase matrix are characterized as a function of density.
Ceramometal monoliths with metallic particles (up to 80 wt.%) randomly distributed in the oxide matrix are characterized by the hierarchical pore structure with developed ultramacropores which provides their high permeability.
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The core of such an interaction matrix is characterized by a high frequency of interactions among the most generalized taxa.
Intercalated microstructure of the composite matrix was characterized by FTIR and XRD, respectively.
The filter gain matrix is characterized by means of the solvability of the deduced RMIs.
Alignment of the SWNTs in the PET matrix was characterized by Raman spectroscopy.
The degree of clay silicate dispersion in the blend matrix was characterized by X-ray diffraction.
The microscopic studies of WC particles and Ni-based matrix were characterized by the scanning electron microscopy (SEM).
The resultant 3D collagen matrix was characterized physiochemically using Fourier transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM) and mechanical property.
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Justyna Jupowicz-Kozak
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