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Selected granular attack from breakdown of the copper-depleted matrix was believed to be the cause for localized corrosion in the T8 and T8+ tempers.
For a long time functional properties of the extracellular microenvironment and matrix was believed to be restricted to form the "glue" between cells, responsible for simply to maintain shape and coherence of tissues and organs as well as a reservoir of body fluids.
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The high interfacial surface area between the fibre structure and the hydrogel matrix is believed to be one of the main factors responsible for the significant increase in the mechanical properties of the constructs.
Self-assembled silicon nanocrystals [Si NCs] embedded in a dielectric matrix are believed to be a promising material for applications in optoelectronics [1 3] and photovoltaic solar cells [4 10].
This distribution of solute atoms within the solvent matrix is believed to be responsible for enhanced solubility in GaAsBi [6] and GaInP [31].
The binders dispersed in the coal/binder matrix are believed to act as fully adhesive, which benefits the mechanical strength of the briquettes.
The presence of an interfacial thermal resistance between the CNT and the surrounding Cu matrix is believed to be a main reason in causing the measured thermal conductivity to be much less than expected.
In addition to interconnected pores implied in Case I-R study, coal matrix is believed to have finer and, possibly, isolated (blind) pores, which arise from turbostratic packing of the fundamental building blocks (Ozdemir 2004).
PBP2a found in the biofilm matrix is believed to have a role in the development of virulence in MRSA.
Chondrocytes located in the extracellular matrix are believed to relay mechanical signals through the plasma membrane via integrins [ 12, 13].
Interaction between chromatin and the nuclear matrix is believed to occur at specific sites from 300 bp to several kb long, termed matrix attachment regions (MAR) [ 1].
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