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静电纺丝制备 CoO-碳纳米纤维网络作为锂离子电池的无粘结剂阳极材料,具有增强的性能。

CoO-carbon nanofiber networks prepared by electrospinning as binder-free anode materials for lithium-ion batteries with enhanced properties.

机构信息

Key Laboratory for Micro-Nano Optoelectronic Devices of Ministry of Education, State Key Laboratory for Chemo/Biosensing and Chemometrics, Hunan University, Changsha, 410082, P.R. China.

出版信息

Nanoscale. 2013 Dec 21;5(24):12342-9. doi: 10.1039/c3nr03931e.

Abstract

CoOx-carbon nanofiber networks were prepared from cobalt(ii) acetate and polyacrylonitrile by an electrospinning method followed by thermal treatment. The XPS results demonstrated that the cobalt compound in CoOx-carbon obtained at 650 °C was CoO rather than Co or Co3O4. The CoO nanoparticles with diameters of about 8 nm were homogeneously distributed in the matrix of the nanofibers with diameters of 200 nm. As binder-free anodes for lithium-ion batteries, the discharge capacities of such CoO-carbon (CoO-C) composite nanofiber networks increased with the pyrolysis and annealing temperature, and the highest value was 633 mA h g(-1) after 52 cycles at a current density of 0.1 A g(-1) when the CoO-C was obtained at 650 °C. In addition, the rate capacities of the CoO-C obtained at 650 °C were found to be higher than that of the sample annealed at a lower temperature and pure carbon nanofiber networks annealed at 650 °C. The improved properties of CoO-C nanofiber networks were ascribed to nanofibers as the framework to keep the structural stability, and favorable mass and charge transport. The present study may provide a new strategy for the synthesis of binder-free anodes for lithium-ion batteries with excellent properties.

摘要

CoOx-碳纳米纤维网络是通过静电纺丝法和随后的热处理由醋酸钴和聚丙烯腈制备的。XPS 结果表明,在 650°C 下获得的 CoOx-碳中的钴化合物是 CoO,而不是 Co 或 Co3O4。直径约为 8nm 的 CoO 纳米颗粒均匀分布在直径为 200nm 的纳米纤维基质中。作为锂离子电池的无粘结剂阳极,这种 CoO-碳(CoO-C)复合纳米纤维网络的放电容量随着热解和退火温度的升高而增加,当 CoO-C 在 650°C 下获得时,在 0.1A g(-1)的电流密度下经过 52 次循环后,其最高值为 633mA h g(-1)。此外,在 650°C 下退火得到的 CoO-C 的倍率容量高于在较低温度下退火得到的样品和在 650°C 下退火得到的纯碳纳米纤维网络的倍率容量。CoO-C 纳米纤维网络性能的提高归因于纳米纤维作为保持结构稳定性的骨架,以及有利于质量和电荷的传输。本研究可能为具有优异性能的锂离子电池无粘结剂阳极的合成提供了一种新策略。

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