Pham Tuyet Nhung, Huy Tran Quang, Le Anh-Tuan
Phenikaa University Nano Institute (PHENA), Phenikaa University Hanoi 12116 Vietnam
Faculty of Electric and Electronics, Phenikaa University Hanoi 12116 Vietnam.
RSC Adv. 2020 Aug 27;10(52):31622-31661. doi: 10.1039/d0ra05133k. eCollection 2020 Aug 21.
The development of spinel ferrite nanomaterial (SFN)-based hybrid architectures has become more popular owing to the fascinating physicochemical properties of SFNs, such as their good electro-optical and catalytic properties, high chemothermal stability, ease of functionalization, and superparamagnetic behaviour. Furthermore, achieving the perfect combination of SFNs and different nanomaterials has promised to open up many unique synergistic effects and advantages. Inspired by the above-mentioned noteworthy properties, numerous and varied applications have been recently developed, such as energy storage in lithium-ion batteries, environmental pollutant monitoring, and, especially, biomedical applications. In this review, recent development efforts relating to SFN-based hybrid designs are described in detail and logically, classified according to 4 major hybrid structures: SFNs/carbonaceous nanomaterials; SFNs/metal-metal oxides; SFNs/MS; and SFNs/other materials. The underlying advantages of the additional interactions and combinations of effects, compared to the standalone components, and the potential uses have been analyzed and assessed for each hybrid structure in relation to lithium-ion battery, environmental, and biomedical applications.
由于尖晶石铁氧体纳米材料(SFN)具有迷人的物理化学性质,如良好的电光和催化性能、高化学热稳定性、易于功能化以及超顺磁行为,基于SFN的混合结构的发展变得越来越流行。此外,实现SFN与不同纳米材料的完美结合有望带来许多独特的协同效应和优势。受上述显著特性的启发,最近已开发出众多不同的应用,如锂离子电池中的能量存储、环境污染物监测,尤其是生物医学应用。在本综述中,详细且有条理地描述了与基于SFN的混合设计相关的最新进展,并根据4种主要混合结构进行分类:SFNs/碳质纳米材料;SFNs/金属-金属氧化物;SFNs/MS;以及SFNs/其他材料。相对于单独的组分,分析和评估了每种混合结构在锂离子电池、环境和生物医学应用方面额外相互作用和组合效应的潜在优势及潜在用途。