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具有蛋黄壳结构的非晶态氧化铁-亚硒酸盐复合微球作为锂离子电池的高效阳极材料。

Amorphous iron oxide-selenite composite microspheres with a yolk-shell structure as highly efficient anode materials for lithium-ion batteries.

作者信息

Kim Ju Hyeong, Park Gi Dae, 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

Nanoscale. 2020 May 21;12(19):10790-10798. doi: 10.1039/d0nr01905d.

DOI:10.1039/d0nr01905d
PMID:32391842
Abstract

Yolk-shell structured transition metal compounds have intrinsic structural advantages as anode materials and have been synthesized in a highly crystalline form. Thus, development of a synthesis process for a yolk-shell structure with an amorphous state, that displays high structural stability and fast ionic diffusion, is a notable research subject, with wide applications in fields such as energy storage. Herein, a novel approach for synthesizing amorphous materials with a yolk-shell structure using several facile phase transformation processes is presented. Crystalline iron oxide microspheres with a yolk-shell structure were formed by oxidation of the spray-dried product at 400 °C. Using the pitch/tetrahydrofuran solution infiltration method, pitch-infiltrated iron oxide was selenized at 350 °C to form a crystalline iron selenide-C composite. The following partial oxidation process at 375 °C produced a yolk-shell structured amorphous iron oxide-selenite composite. The amorphous characteristics, the yolk-shell structure, and the formation of a heterostructured interface from iron selenite during the initial cycle contributed to high electrochemical kinetic properties and excellent cycling performance of the iron oxide-selenite composite. The amorphous iron oxide-iron selenite yolk-shell microspheres exhibited enhanced reversible capacities, cycling stability, and remarkable electrochemical kinetic properties when compared to crystalline iron oxide.

摘要

蛋黄壳结构的过渡金属化合物作为阳极材料具有内在的结构优势,并且已经以高度结晶的形式合成。因此,开发一种具有非晶态的蛋黄壳结构的合成工艺是一个值得关注的研究课题,该结构具有高结构稳定性和快速离子扩散特性,在储能等领域有广泛应用。在此,本文提出了一种利用几种简便的相变过程合成具有蛋黄壳结构的非晶材料的新方法。通过在400℃下氧化喷雾干燥产物形成具有蛋黄壳结构的结晶氧化铁微球。采用沥青/四氢呋喃溶液浸渍法,在350℃下对浸渍沥青的氧化铁进行硒化,形成结晶硒化铁-C复合材料。随后在375℃下进行部分氧化过程,得到了具有蛋黄壳结构的非晶态氧化铁-亚硒酸盐复合材料。非晶特性、蛋黄壳结构以及在初始循环过程中亚硒酸铁形成异质结构界面,有助于提高氧化铁-亚硒酸盐复合材料的电化学动力学性能和优异的循环性能。与结晶氧化铁相比,非晶态氧化铁-亚硒酸铁蛋黄壳微球表现出更高的可逆容量、循环稳定性和显著的电化学动力学性能。

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