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Degradable shape-memory polymers are multifunctional materials with broad applicability for medical devices.
Carbon nanotube (CNT) polymer nanocomposites are attractive multifunctional materials with a growing range of commercial applications.
Mesocrystalline particles have been recognized as a class of multifunctional materials with potential applications in different fields.
The design of multifunctional materials with durability under extreme conditions has raised considerable interest for their highly practical potential.
Genetically engineered protein polymers (GEPP) are a class of multifunctional materials with precisely controlled molecular structure and property profile.
There is an increasing demand in developing of multifunctional materials with good antibacterial activity, biocompatibility and drug/gene delivery capability for next-generation biomedical applications.
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This approach results in novel multifunctional material with great potential for further applications.
We report on a new class of elastic architected materials with hybrid unit cells, consisting of discrete elastic elements with non-convex strain energy and one convex (but possibly nonlinear) elastic element, to obtain a reversible multifunctional material with extreme energy dissipation.
ZnO nanoparticles are a multifunctional material with good catalytic, electrical, photochemical, and optical properties.
These porous and chelated nanostructured multifunctional materials, along with their metal extraction and catalytic properties, have also shown biological activities such as antibody purification from human plasma, removing oxidative stress, etc. [28, 29, 30, 31, 32].
Multifunctional materials, or material systems intentionally encoded with a multitude of engineering functionalities, are revolutionizing civil engineering practice by offering new materials that can resist loads and self-sense for damage.
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