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L-Histidine-assisted template-free hydrothermal synthesis of α-Fe2O3 porous multi-shelled hollow spheres with enhanced lithium storage properties

机译:L-组氨酸辅助无模板水热法合成具有增强锂存储特性的α-Fe2O3多孔多壳空心球

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摘要

Unique α-Fe2O3 porous multi-shelled hollow spheres (α-Fe2O3 PMSHSs) have been prepared by a simple template-free hydrothermal method followed by annealing in air. For the first time, l-histidine was used as a morphology controlling agent in the synthesis process. The α-Fe2O3 PMSHSs had a relatively high surface area of 14.2 m2 g-1 and a pore volume of 0.07 cm3 g-1. When used as an anode material for lithium ion batteries, the α-Fe2O3 PMSHSs exhibited high specific capacity, good cycling stability, and excellent rate performance. A stable and reversible capacity of 869.9 mA h g-1 could be maintained at a charge-discharge current density of 400 mA g-1 after 300 cycles. Superior rate capability had also been demonstrated by testing the material at different current densities. The α-Fe2O3 PMSHSs could deliver a capacity as high as 833.3 mA h g-1 at 800 mA g-1, and a capacity of 498.1 mA h g-1 at 6000 mA g -1. The superior electrochemical performance of the α-Fe 2O3 PMSHSs is attributed to the hierarchical porosity, special micro/nanostructure, shorter electron and lithium ion diffusion pathways, and easy penetration of the electrolyte. This journal is ? the Partner Organisations 2014.
机译:通过简单的无模板水热法,然后在空气中退火,制备了独特的α-Fe2O3多孔多壳空心球(α-Fe2O3PMSHSs)。首次将1-组氨酸用作合成过程中的形态控制剂。 α-Fe2O3PMSHSs的表面积相对较高,为14.2 m2 g-1,孔体积为0.07 cm3 g-1。当用作锂离子电池的负极材料时,α-Fe2O3PMSHSs具有较高的比容量,良好的循环稳定性和出色的倍率性能。 300次循环后,在400 mA g-1的充放电电流密度下,可以保持869.9 mA h g-1的稳定和可逆容量。通过在不同电流密度下测试该材料,也证明了优异的速率能力。 α-Fe2O3PMSHS在800 mA g-1时可提供高达833.3 mA h g-1的容量,在6000 mA g -1时可提供498.1 mA h g-1的容量。 α-Fe2O3 PMSHS的优异电化学性能归因于分层孔隙率,特殊的微/纳米结构,更短的电子和锂离子扩散路径以及易于渗透的电解质。这本日记是? 2014年合作伙伴组织。

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