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首页> 外文期刊>Journal of nanoparticle research: An interdisciplinary forum for nanoscale science and technology >Synthesis of free-standing MnO2/reduced graphene oxide membranes and electrochemical investigation of their performances as anode materials for half and full lithium-ion batteries
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Synthesis of free-standing MnO2/reduced graphene oxide membranes and electrochemical investigation of their performances as anode materials for half and full lithium-ion batteries

机译:独立的MnO2 /还原氧化石墨烯膜的合成及其电化学性能,作为半锂和全锂离子电池的负极材料

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摘要

MnO2 nanotubes/reduced graphene oxide (MnO2/RGO) membranes with different MnO2 contents are successfully synthesized by a facile two-step method including vacuum filtration and subsequent thermal reduction route. The MnO2 nanotubes obtained are 38 nm in diameter and homogeneously imbedded in RGO sheets as spacers. The synthesized MnO2/RGO membranes exhibit excellent mechanical flexibilities and free-standing properties. Using the membranes directly as anode materials for lithium batteries (LIBs), the membranes for half LIBs show superb cycling stabilities and rate performances. Importantly, the electrochemical performances of MnO2/RGO membranes show a strong dependence on the MnO2 nanotube contents in the hybrids. In addition, our results show that the hybrid membranes with 49.0 wt% MnO2 nanotube in half LIBs achieve a high reversible capacity of 1006.7 mAh g(-1) after 100 cycles at a current density of 0.1 A g(-1), which is higher lithium storage capacity than that of reported MnO2-carbon electrodes. Furthermore, the synthesized full cell (MnO2/RGO//LiCoO2) system also exhibit excellent electrochemical performances, which can be attributed to the unique microstructures of MnO2 and GRO, coupled with the strong synergistic interaction between MnO2 nanotubes and GRO sheets.
机译:通过一种简便的两步法,包括真空过滤和随后的热还原途径,成功地合成了不同MnO2含量的MnO2纳米管/氧化石墨烯(MnO2 / RGO)膜。获得的MnO2纳米管直径为38 nm,并均匀地嵌入RGO片中作为隔离层。合成的MnO2 / RGO膜具有出色的机械柔韧性和独立性能。直接将膜用作锂电池(LIB)的负极材料,用于一半LIB的膜显示出极好的循环稳定性和倍率性能。重要的是,MnO2 / RGO膜的电化学性能显示出对杂化物中MnO2纳米管含量的强烈依赖性。此外,我们的研究结果表明,在一半的LIB中具有49.0 wt%MnO2纳米管的杂化膜在100次循环后在0.1 A g(-1)的电流密度下实现了1006.7 mAh g(-1)的高可逆容量,即锂存储容量比报道的MnO2-碳电极高。此外,合成的全电池(MnO2 / RGO // LiCoO2)体系还表现出优异的电化学性能,这可以归因于MnO2和GRO的独特微观结构,以及MnO2纳米管和GRO片之间的强协同作用。

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