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一锅法合成原位碳包覆 FeO 作为长寿命锂离子电池负极材料。

One-pot synthesis of in-situ carbon-coated FeO as a long-life lithium-ion battery anode.

机构信息

Faculty of Materials Science & Chemistry, China University of Geosciences, Wuhan, 430074, People's Republic of China.

出版信息

Nanotechnology. 2017 Apr 18;28(15):155603. doi: 10.1088/1361-6528/aa6143. Epub 2017 Feb 17.

Abstract

FeO has been regarded as a promising anode material for lithium-ion batteries (LIBs) due to its high theoretical capacity, low cost, and environmental friendliness. In this work, we present a one-pot reducing-composite-hydroxide-mediated (R-CHM) method to synthesize in situ carbon-coated FeO (FeO@C) at 280 °C using Fe(NO) · 9HO and PEG800 as raw materials and NaOH/KOH as the medium. The as-prepared FeO octahedron has an average size of 100 nm in diameter, covered by a carbon layer with a thickness of 3 nm, as revealed by FESEM and HRTEM images. When used as anode materials in LIBs, FeO@C exhibited an outstanding rate capability (1006, 918, 825, 737, 622, 455 and 317 mAh g at 0.1, 0.2, 0.5, 0.8, 1.0, 1.5 and 2.0 A g). Moreover, it presented an excellent cycling stability, with a retained capacity of 261 mAh g after 800 cycles under an extremely high specific current density of 2.0 A g. Such results indicate that FeO@C can provide a new route into the development of long-life electrodes for future rechargeable LIBs. Importantly, the R-CHM developed in our work can be extended for the synthesis of other carbon-coated electrodes for LIBs and functional nanostructures for broader applications.

摘要

FeO 因其高理论容量、低成本和环境友好性而被认为是一种很有前途的锂离子电池 (LIB) 阳极材料。在这项工作中,我们采用 Fe(NO)·9HO 和 PEG800 为原料,以 NaOH/KOH 为介质,通过一步还原-复合-氢氧化物介导(R-CHM)法,在 280°C 下合成了原位碳包覆的 FeO(FeO@C)。FESEM 和 HRTEM 图像表明,所制备的 FeO 八面体的平均粒径为 100nm,表面覆盖着厚度为 3nm 的碳层。当用作 LIB 的阳极材料时,FeO@C 表现出出色的倍率性能(在 0.1、0.2、0.5、0.8、1.0、1.5 和 2.0 A g 时,分别为 1006、918、825、737、622、455 和 317 mAh g)。此外,它还表现出优异的循环稳定性,在 2.0 A g 的极高比电流密度下,经过 800 次循环后,仍保留了 261 mAh g 的容量。这些结果表明,FeO@C 可为未来可充电 LIB 的长寿命电极的开发提供新途径。重要的是,我们在工作中开发的 R-CHM 可以扩展到用于 LIB 的其他碳包覆电极和更广泛应用的功能性纳米结构的合成。

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