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The presence of abundant functional groups at the GO-cMWCNTs composite improved the loading of antibodies (StAb) against S. typhimurium leading to improved biosensing characteristics.
Consequently, microhardness and density of the sintered composite improved noticeably.
The bending strength of W/Cu composite improved 12.7% through W fibers reinforcement.
The MGO/β-CD@AuNPs composite improved electrochemical response and sensitivity of the sensor.
In compression strength test, that parameter for (cement fly ash phosphogypsum) composite improved by 110% (from 7.09 to 14.98 MPa).
The high specific surface area and efficient electrical wiring in the PB embedded tetrapod architecture of PC composite improved the catalytic activity of this device for glucose sensing.
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The GPE-Al2O3 composite improves the interfacial resistance, ion coordination and the electrochemical stability of the GPE.
The heterogeneous junction formed in the ternary composite improves the photocatalytic efficiency and stability.
Results of the modified Lottman test showed that use of nano-composite improved the resistance of the asphalt mix manufactured by two types of aggregates used in this study.
Compared with the raw Fe3O4, the saturation magnetization of Fe3O4/Fe composites improved greatly.
With increasing exfoliation, the stiffness, strength and gas-barrier properties of the composites improved significantly.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com