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The synthesis and fabrication of multifunctional nanostructures with enhanced biocompatibility are the most important characteristics for biomedical research.
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The combination of flower-like three dimensional (3D) Bi2microspheresheres and Fe3O4/SiO2 magnetic nanospheres provides a useful strategy for designing multifunctional nanostructure materials with enhanced photocatalytic activities in the potential applications of water purification.
Multicomponent, synergistic and multifunctional nanostructures have taken over the spotlight in the realm of biomedical nanotechnologies.
The assembly of graphene with other nanoscale building blocks such as metals, metal oxides, and polymers has led to the possibility to create new electroactive and multifunctional nanostructures, which can serve as promising material platforms for electrochemical purposes.
The authors successfully fabricated various multifunctional nanostructures and concluded that a mobility-assisted mechanism is responsible for the growth of such nanostructures [20].
This work contributes to the development of multifunctional nanostructures in the search for strategies for in vivo DNA delivery.
Furthermore, the synthesis methods presented in this paper also suggested new ways to the synthesis of multifunctional nanostructures.
Recently, the authors also tested the veracity of mobility-assisted growth mechanism inside MWCNTs and could fabricate co-axial multifunctional nanostructures of MWCNTs and Co NTs [20].
As more and more hollow nanoparticles become available, we believe that this synthetic method would find general applications in the fabrication of core shell multifunctional nanostructures.
One elegant physicochemical route to prepare multifunctional nanostructures involves electrodeposition within the cylindrical nanopores of the self-assembled porous anodic alumina (PAA) [7, 8].
As more and more hollow nanoparticles become available, this synthetic method would find general applications in the fabrication of core shell multifunctional nanostructures.
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