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The incorporation of TiN nanoparticles in the Ni Fe alloy matrix caused a distinct microstructural change from uniform granular in Ni Fe alloy to 'cauliflower-like' morphology in Ni Fe/TiN nanocomposites.
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Such a high ionic strength matrix causes a selectivity problem in single IC systems.
The structures are characterised by small crystalline particles embedded in an amorphous matrix causing a high specific surface area.
We specifically aimed to detect whether the seminatural and natural matrix causes a trade-off between pest and natural enemy abundances.
Introducing a small amount of TiN or TiC into a-C matrix causes a hardness reduction, but further addition of crystalline phase makes increase the hardness.
Based on the recently introduced intensity-dominant scale approach, we test the hypotheses that: (1) the encroachment of woody patches into the surrounding grassland matrix causes a shift in the dominant scale.
The infiltration of sodium metal into the carbonous matrix causes a rearrangement of carbon particles, resulting in the formation of graphite structure, a transformation from micropores to mesopores and an increase of nitrogen surface area.
Below the critical composition the plasticizer will be fixed by energetic driven hetero-interaction preferentially in the 'interdomains' within the amorphous PVC matrix, causing a stiffening of the blend.
This movement of water within the bonding interface may result in plasticization of the resin matrix causing a decrease in bond strength [22].
Introduction of carbon nanotubes to the aluminium matrix causes a significant decrease in the thermal expansion coefficient αz(T) as a function of temperature along the direction perpendicular to the rolling plane of the nanomaterial ribbon.
The substitution of As atoms for bigger Bi ones during the epitaxial growth would have locally broadened the lattice of the matrix, causing a distortion in the dumbbell shape while the structure is maintained.
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