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Controlled synthesis and enhanced electrochemical performance of Prussian blue analogue-derived hollow FeCo2O4 nanospheres as lithium-ion battery anodes

机译:普鲁士蓝类似物衍生的空心FeCo2O4纳米球作为锂离子电池阳极的受控合成和增强的电化学性能

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Porous metal oxides have attracted great interest as anode materials for lithium ion batteries owing to their improved electrochemical properties. In this study, we propose a Prussian blue analogue (PBA)-derived strategy to successfully prepare hollow porous FexCo(3-x)O(4) (FCO) with controlled morphologies (nanospheres and nanocubes) using surfactants as "soft templates". In comparison with FCO nanocubes (FCO-NCs) and FCO nanoparticles (FCO-NPs), FCO spheres (FCO-NSs) show a much better cycling stability and rate capability as an anode material for lithium ion batteries. The cycling capacity of FCO-NSs at the 50th cycle has been largely enhanced to 1060 mA h g(-1) from only 721 (FCO-NCs) and 389 mA h g(-1) (FCO-NPs). The capacity of FCO-NSs at a current density of 1000 mA g(-1) has been considerably improved to 823 mA h g(-1) from 504 and 152 mA h g(-1) for FCO-NCs and FCO-NPs, respectively, indicating a much better rate capability. The greatly enhanced cycling stability and rate capability can be largely attributed to the hollow porous structure of FCO-NSs with a wider pore distribution, a slightly higher Co content (compared to FCO-NCs) and higher mechanical strength, which facilitates Li+ and electron diffusion and migration.
机译:多孔金属氧化物由于其改善的电化学性能而作为锂离子电池的负极材料引起了极大的兴趣。在这项研究中,我们提出了一种普鲁士蓝类似物(PBA)的策略,可以使用表面活性剂作为“软模板”成功地制备具有受控形态(纳米球和纳米立方体)的空心多孔FexCo(3-x)O(4)(FCO)。与FCO纳米立方体(FCO-NCs)和FCO纳米颗粒(FCO-NPs)相比,FCO球(FCO-NSs)作为锂离子电池的负极材料具有更好的循环稳定性和倍率性能。 FCO-NS在第50个循环时的循环容量已从仅721(FCO-NC)和389 mA h g(-1)(FCO-NP)大大提高到1060 mA h g(-1)。 FCO-NS在1000 mA g(-1)电流密度下的容量已从504和152 mA hg(-1)分别大大提高到FCO-NC和FCO-NP的823 mA hg(-1) ,表明评分能力要好得多。循环稳定性和倍率性能大大提高的主要原因是FCO-NSs的中空多孔结构具有较宽的孔分布,Co含量稍高(与FCO-NCs相比)和较高的机械强度,这有利于Li +和电子扩散和迁移。

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