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介孔 ZnMnO 微管的仿生策略用于高性能锂/钠离子电池。

Mesoporous ZnMnO Microtubules Derived from a Biomorphic Strategy for High-Performance Lithium/Sodium Ion Batteries.

机构信息

Guangxi Key Laboratory of Information Materials , Guilin University of Electronic Technology , Guilin 541004 , PR China.

Department of Material and Chemistry Engineering , Pingxiang University , Pingxiang 337055 , PR China.

出版信息

ACS Appl Mater Interfaces. 2018 Oct 3;10(39):33170-33178. doi: 10.1021/acsami.8b10111. Epub 2018 Sep 18.

DOI:10.1021/acsami.8b10111
PMID:30183243
Abstract

ZnMnO microtubules (ZMO-MTs) with a mesoporous structure are fabricated by a novel yet effective biomorphic approach employing cotton fiber as a biotemplate. The fabricated ZMO-MT has approximately an inner diameter of 8.5 μm and wall thickness of 1.5 μm. Further, the sample of ZMO-MT displays a large specific surface area of 48.5 m g. When evaluated as a negative material for Li-ion batteries, ZMO-MT demonstrates an improved cyclic performance with discharge capacities of 750.4 and 535.2 mA h g after 300 cycles, under current densities of 200 and 500 mA g, respectively. Meanwhile, ZMO-MT exhibits superior rate performances with high reversible discharge capacities of 614.7 and 465.2 mA h g under high rates of 1000 and 2000 mA g, respectively. In sodium ion batteries applications, ZMO-MT delivers excellent high discharge capacities of 102 and 71.4 mA h g after 300 cycles under 100 and 200 mA g, respectively. An excellent rate capability of 58.2 mA h g under the current density of 2000 mA g can also be achieved. The promising cycling performance and rate capability could be benefited from the unique one-dimensional mesoporous microtubular architecture of ZMO-MT, which offers a large electrolyte/electrode accessible contact area and short diffusion distance for both of ions and electrons, buffering the volume variation originated from the repeated ion intercalation/deintercalation processes.

摘要

采用一种新颖有效的仿生方法,以棉纤维为生物模板,制备出具有介孔结构的 ZnMnO 微米管(ZMO-MTs)。所制备的 ZMO-MT 的内径约为 8.5μm,壁厚为 1.5μm。此外,ZMO-MT 的样品具有 48.5m²/g 的大比表面积。当作为锂离子电池的负极材料进行评估时,ZMO-MT 在电流密度分别为 200 和 500 mA/g 时,经过 300 次循环后,具有 750.4 和 535.2 mA h/g 的改进循环性能。同时,ZMO-MT 表现出优异的倍率性能,在 1000 和 2000 mA/g 的高倍率下,具有高达 614.7 和 465.2 mA h/g 的可逆放电容量。在钠离子电池应用中,ZMO-MT 在 100 和 200 mA/g 下分别经过 300 次循环后,可提供 102 和 71.4 mA h/g 的出色高放电容量。在 2000 mA/g 的电流密度下,还可以实现 58.2 mA h/g 的优异倍率性能。这种出色的循环性能和倍率性能可归因于 ZMO-MT 的独特一维介孔微管状结构,该结构提供了大的电解质/电极可接触面积和离子和电子的短扩散距离,缓冲了源于重复的离子嵌入/脱嵌过程的体积变化。

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