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一种构建具有长循环寿命的超快可充电锂离子电池的均匀碳包覆尖晶石 LiMn2O4 纳米线的通用策略。

A general strategy to construct uniform carbon-coated spinel LiMn2O4 nanowires for ultrafast rechargeable lithium-ion batteries with a long cycle life.

机构信息

School of Physics and Technology, Key Laboratory of Artificial Micro and Nano-structure of Ministry of Education, Wuhan University, Wuhan, China.

出版信息

Nanoscale. 2015 Aug 21;7(31):13173-80. doi: 10.1039/c5nr02057c. Epub 2015 Jul 16.

Abstract

Control over one-dimensional growth of spinel-type LiMn2O4 nanowires is challenging in the area of materials science due to their cubic crystal structure. The current strategy is to use a self-support template to fabricate LiMn2O4 nanowires, which is time-consuming and limits their large-scale commercial production. In this paper, we propose a general strategy to construct well-defined LiMn2O4 nanowires terminated with amorphous carbon at the edges by an ingenious method without using any template. Benefited from its unique carbon-coated nanowire structure, the electrode exhibits a capacitor-like rate performance and battery-like high capacity for long-time cycling. Even after 1500 cycles at an extremely high current density of 30 C, approximately 82% of its initial capacity can still be retained. Significantly, the strategy reported here will be beneficial and revelatory to manufacture other extensive one-dimensional robust carbon-decorated nanowires, paving new ways for future developments of ultrafast rechargeable lithium-ion batteries.

摘要

控制尖晶石型 LiMn2O4 纳米线的一维生长在材料科学领域是具有挑战性的,因为它们具有立方晶体结构。目前的策略是使用自支撑模板来制备 LiMn2O4 纳米线,但这种方法耗时且限制了其大规模商业生产。在本文中,我们提出了一种通用策略,通过巧妙的方法在没有使用任何模板的情况下,在边缘构建具有定义明确的无定形碳封端的 LiMn2O4 纳米线。得益于其独特的碳包覆纳米线结构,该电极表现出类似于电容器的倍率性能和类似于电池的高容量,可进行长时间循环。即使在极高电流密度 30C 的情况下循环 1500 次后,仍可保持初始容量的约 82%。重要的是,这里报道的策略将有利于并启发制造其他广泛的一维坚固碳包覆纳米线,为未来超快可充电锂离子电池的发展开辟新途径。

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