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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >Synergistic effects of various morphologies and Al doping of spinel LiMn2O4 nanostructures on the electrochemical performance of lithium-rechargeable batteries
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Synergistic effects of various morphologies and Al doping of spinel LiMn2O4 nanostructures on the electrochemical performance of lithium-rechargeable batteries

机译:尖晶石LiMn2O4纳米结构的各种形态和Al掺杂对锂可充电电池电化学性能的协同效应

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摘要

Nanostructured electrodes have recently received great attention as components in lithium rechargeable batteries, especially because of the high power produced by the fast kinetic properties of these unique structures. Here, we report the successful synthesis of various nanostructured morphologies of spinel lithium manganese oxide electrodes (nanorod, nanothorn sphere, and sphere) from a similarly shaped manganese dioxide precursor that was controlled with different aluminium contents by the hydrothermal method. Among these structures, nanothorn sphere structured LiAl_(0.02)2Mn_(1.98)O4 produces the highest discharge capacity of 129.8 mA h g~(-1), excellent rate capability (94.6 mA h g~(-1) at 20 C, 72% of 0.2 C-rate discharge capacity) and stable cyclic retention for 50 cycles. The excellent kinetic properties of the nanothorn sphere structure are not only due to the nanothorn sphere electrode having high surface area but also because the critical amount of Al in the nanothorn sphere electrode was located at the Mn site (16d) instead of the Li site (8a).
机译:近年来,作为锂可再充电电池中的组件,纳米结构电极受到了极大的关注,特别是由于这些独特结构的快速动力学特性所产生的高功率。在这里,我们报告了由相似形状的二氧化锰前驱体成功合成了尖晶石锂锰氧化物电极的各种纳米结构形态(纳米线,纳米刺球和球形),该前驱体通过水热法由不同的铝含量控制。在这些结构中,纳米刺球结构的LiAl_(0.02)2Mn_(1.98)O4产生的最高放电容量为129.8 mA hg〜(-1),具有极好的倍率能力(在20 C时为94.6 mA hg〜(-1),为72% 0.2 C速率放电容量)和50次循环的稳定循环保持。纳米刺球结构的优异动力学性能不仅是由于纳米刺球电极具有高的表面积,而且还因为纳米刺球电极中的临界Al量位于Mn部位(16d)而不是Li部位( 8a)。

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