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Fabricating high performance lithium-ion batteries using bionanotechnology

机译:制造高性能锂离子电池使用生物

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摘要

Designing, fabricating, and integrating nanomaterials are key to transferring nanoscale science into applicable nanotechnology. Many nanomaterials including amorphous and crystal structures are synthesized via biomineralization in biological systems. Amongst various techniques, bionanotechnology is an effective strategy to manufacture a variety of sophisticated inorganic nanomaterials with precise control over their chemical composition, crystal structure, and shape by means of genetic engineering and natural bioassemblies. This provides opportunities to use renewable natural resources to develop high performance lithium-ion batteries (LIBs). For LIBs, reducing the sizes and dimensions of electrode materials can boost Li+ ion and electron transfer in nanostructured electrodes. Recently, bionanotechnology has attracted great interest as a novel tool and approach, and a number of renewable biotemplate-based nanomaterials have been fabricated and used in LIBs. In this article, recent advances and mechanism studies in using bionanotechnology for high performance LIBs studies are thoroughly reviewed, covering two technical routes: (1) Designing and synthesizing composite cathodes, e.g. LiFePO4/C, Li3V2-(PO4)(3)/C and LiMn2O4/C; and (2) designing and synthesizing composite anodes, e.g. NiO/C, Co3O4/C, MnO/C, alpha-Fe2O3 and nano-Si. This review will hopefully stimulate more extensive and insightful studies on using bionanotechnology for developing high-performance LIBs.
机译:设计、制造和集成纳米材料是纳米级转移的关键科学适用的纳米技术。纳米材料包括无定形和结晶通过生物矿化结构合成在生物系统。技术,生物是一种有效的生产各种各样的策略复杂的无机纳米材料与精确控制化学成分,晶体结构,通过遗传和形状工程和自然bioassemblies。使用可再生自然提供了机会资源开发高性能锂离子电池(LIBs)。电极材料可以提高和维度李在纳米+离子和电子转移电极。小说作为一种工具,引起了极大兴趣的方法,和一些可再生biotemplate-based纳米材料已经制造和使用中。在使用最新进展和机制研究生物纳米高性能填词研究彻底的审查,包括两个技术路线:(1)设计与合成复合阴极,例如/ C磷酸铁锂,Li3V2 - (PO4) (3) / C和LiMn2O4 / C;和合成复合阳极,例如NiO / C,回顾有望刺激更广泛使用生物和深刻的研究开发高性能填词。

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