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Auxetic materials exhibit many superior properties but drawback in low stiffness owe to the substantial porosity.
These coordination supramolecules-containing novel materials exhibit many switchabilities and other desired properties.
The ceramic materials exhibit many intriguing properties relating to higher melting temperature and good thermomechanical properties.
High surface area, nano-phase materials exhibit many interesting properties quite different from their bulk counterparts, and are the focus of much technical investigation and engineering development based on these properties.
In spite of their low thermal stability, the organoclay materials exhibit many advantages compared to inorganic materials, mainly regarding their organophilicity, which results in easy adherence and ability to exterminate a number of bacterial species [ 32– 32].
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The nanostructured tungsten oxide material exhibited many excellent properties because of their particular phase structure and huge surface areas, which depend greatly on the experimental parameters.
Nanobiomaterials are materials with nanometer features that can mimic the dimensions of natural tissues or organs when compared to micron-sized materials, nanobiomaterials exhibit many superior properties including biocompatibility, mechanical, electrical, biodegradability, and optical.
Moreover, MOFs can be miniaturized to nanometer scale to form nano-MOF (NMOF) materials, which exhibit many advantages over conventional bulk MOFs in terms of the facile tailorability of compositions, sizes and morphologies, the high dispersity in a wide variety of medium, and the intrinsic biocompatibility.
SNAs have been shown to exhibit many desirable qualities as cellular transfection and gene regulation materials, including high cellular uptake and resistance to certain enzymatic degradation pathways.
Lignans also exhibit many bioactivities.
Many materials exhibit strain hardening due to the non-proportional cyclic loading.
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