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Interconnected Nanoflake Network Derived from a Natural Resource for High-Performance Lithium-Ion Batteries

机译:源自高性能锂离子电池自然资源的互连纳米薄片网络

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Numerous natural resources have a highly interconnected network with :developed,porous structure; so enabling directional and fast-matrix transport. Such structures are appealing for the design 'Of efficient anode materials for lithium-ion batteries, although they can be challenging to prepare. Inspired by nature a novel synthesis route from biomass is proposed by using readily available auricularia as retractable suppOrt and carbon coating precursor to soak up "metal salt solution. Using the swelling properties.of the auricularia with the complexation of metal ions; a nitrogen-containing MriO@C nannflake network has been, easily synthesized with fast electrochemical reaction dynamies and'a superior lithium storage performance. A subsequent carbonization results in the it. situ synthesis of MnO nanoparticles throughout the porous carbon flake network. When evaluated as an anode material for lithium-ion batteries, an excellent reversible capacity is achieved of 868 mA. h g(-1) at 0.2 A g(-1) over 300 cycles and 668 mA h g(-1) at 1 A g(-1) over 500 cycles, indicating a high tolerance to the volume expansion. The approach investigated opens up new avenues for the design of high performance electrodes with highly cross-linked nanoflake structures, which may have great application prospects.
机译:许多自然资源具有高度相互联系的网络,这些网络具有发达的多孔结构;因此可以实现定向和快速矩阵传输。这种结构对于“用于锂离子电池的高效阳极材料”的设计具有吸引力,尽管制备起来可能具有挑战性。受自然界的启发,提出了一种利用生物质的新合成途径,即利用现成的耳廓作为可伸缩的支撑物和碳涂层前体来吸收“金属盐溶液。利用耳廓的溶胀特性,使金属离子络合;含氮MriO @ C nannflake网络已经被容易地合成,具有快速的电化学反应动力学和优异的锂存储性能,随后的碳化导致在整个多孔碳薄片网络中原位合成MnO纳米粒子。锂离子电池,在300 A循环中0.2 A g(-1)时可实现868 mA。hg(-1)的优异可逆容量,在500 A循环中1 A g(-1)时可达到668 mA hg(-1)所研究的方法为设计具有高度交联的纳米片结构的高性能电极开辟了新的途径,可能具有很大的应用前景前景。

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