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Fabrication of Core-Shell α-Fe2O3@ Li4Ti5O_(12) Composite and Its Application in the Lithium Ion Batteries

机译:核壳结构α-Fe2O3@ Li4Ti5O_(12)复合材料的制备及其在锂离子电池中的应用

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摘要

In this work, a novel carbon-free core—shell α-iron oxide (α-Fe2O3)@ spinel lithium titanate (Li4Ti5O_(12) LTO) composite has been synthesized via a facile hydro-thermal process. Element mapping confirmed the core-shell structure of α-Fe2O3@LTO. The effects of various experimental parameters, including thickness of TiO2 coating, reaction temperature, and time on the morphologies of the resulted products, were systematically investigated. The electrochemical measurements demonstrate that uniform α-Fe2O3 ellipsoids are coated with LTO to avoid forming a solid electrolyte interface (SEI) layer, to reduce initial capacity loss, and to improve the reversibility of α-Fe2O3 for Li ion storage. Compared with naked α-Fe2O3 ellipsoids, the α-Fe2O3@LTO composites exhibit lower initial capacity loss, higher reversible capacity, and better cycling performance for lithium storage. The electrochemical performance of α-Fe2O3@LTO composite heavily depends on the thickness and density of LTO coating shells. The carbon-free coating of LTO is highly effective in improving the electrochemical performance of α-Fe2O3, promising advanced batteries with high surface stability and excellent security.
机译:在这项工作中,通过简便的水热过程合成了一种新型的无碳核-壳α-氧化铁(α-Fe2O3)@尖晶石钛酸锂(Li4Ti5O_(12)LTO)复合材料。元素映射证实了α-Fe2O3@ LTO的核-壳结构。系统地研究了各种实验参数(包括TiO2涂层的厚度,反应温度和时间)对所得产物形态的影响。电化学测量表明,均匀的α-Fe2O3椭球体被LTO包覆,以避免形成固体电解质界面(SEI)层,从而减少了初始容量损失,并提高了α-Fe2O3用于Li离子存储的可逆性。与裸露的α-Fe2O3椭圆形相比,α-Fe2O3@ LTO复合材料具有较低的初始容量损失,较高的可逆容量和更好的锂存储循环性能。 α-Fe2O3@ LTO复合材料的电化学性能在很大程度上取决于LTO涂层壳的厚度和密度。 LTO的无碳涂层在改善α-Fe2O3的电化学性能方面非常有效,有望成为具有高表面稳定性和出色安全性的高级电池。

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