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具有独特结构且填充有氮掺杂石墨碳的蛋黄壳结构金属氧化物微球的合成及其优异的锂离子存储性能。

Synthesis of Uniquely Structured Yolk-Shell Metal Oxide Microspheres Filled with Nitrogen-Doped Graphitic Carbon with Excellent Li-Ion Storage Performance.

作者信息

Kim Jung Hyun, Kang Yun Chan

机构信息

Department of Materials Science and Engineering, Korea University, Anam-Dong, Seongbuk-Gu, Seoul, 136-713, Republic of Korea.

出版信息

Small. 2017 Oct;13(39). doi: 10.1002/smll.201701585. Epub 2017 Aug 22.

Abstract

Novel structured composite microspheres of metal oxide and nitrogen-doped graphitic carbon (NGC) have been developed as efficient anode materials for lithium-ion batteries. A new strategy is first applied to a one-pot preparation of composite (FeO -NGC/Y) microspheres via spray pyrolysis. The FeO -NGC/Y composite microspheres have a yolk-shell structure based on the iron oxide material. The void space of the yolk-shell microsphere is filled with NGC. Dicyandiamide additive plays a key role in the formation of the FeO -NGC/Y composite microspheres by inducing Ostwald ripening to form a yolk-shell structure based on the iron oxide material. The FeO -NGC/Y composite microspheres with the mixed crystal structure of rock salt FeO and spinel Fe O phases show highly superior lithium-ion storage performances compared to the dense-structured FeO microspheres with and without carbon material. The discharge capacities of the FeO -NGC/Y microspheres for the 1st and 1000th cycle at 1 A g are 1423 and 1071 mAh g , respectively. The microspheres have a reversible discharge capacity of 598 mAh g at an extremely high current density of 10 A g . Furthermore, the strategy described in this study is generally applied to multicomponent metal oxide-carbon composite microspheres with yolk-shell structures based on metal oxide materials.

摘要

新型金属氧化物与氮掺杂石墨碳(NGC)结构的复合微球已被开发用作锂离子电池的高效负极材料。一种新策略首次应用于通过喷雾热解一锅法制备复合(FeO-NGC/Y)微球。FeO-NGC/Y复合微球基于氧化铁材料具有核壳结构。核壳微球的空隙空间填充有NGC。双氰胺添加剂通过诱导奥斯特瓦尔德熟化以形成基于氧化铁材料的核壳结构,在FeO-NGC/Y复合微球的形成中起关键作用。与具有和不具有碳材料的致密结构FeO微球相比,具有岩盐FeO和尖晶石FeO相混合晶体结构的FeO-NGC/Y复合微球显示出高度优异的锂离子存储性能。FeO-NGC/Y微球在1 A g下第1次和第1000次循环的放电容量分别为1423和1071 mAh g。在10 A g的极高电流密度下,微球具有598 mAh g的可逆放电容量。此外,本研究中描述的策略通常适用于基于金属氧化物材料具有核壳结构的多组分金属氧化物-碳复合微球。

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