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首页> 外文期刊>Nanoscale >Efficient entrapment and catalytic conversion of lithium polysulfides on hollow metal oxide submicro-spheres as lithium-sulfur battery cathodes
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Efficient entrapment and catalytic conversion of lithium polysulfides on hollow metal oxide submicro-spheres as lithium-sulfur battery cathodes

机译:有效的截留和催化转化锂聚硫中空的金属氧化物submicro-spheres像锂硫电池阴极

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摘要

Li-S battery technology, with high theoretical capacity and energy density, has drawn much attention in recent years as a possible replacement for current Li-ion battery technologies. A major drawback of Li-S batteries is a severe capacity fading effect which, to a large extent, stems from the dissolution and diffusion of lithium polysulfides (LiPS) that are formed during both charge and discharge cycles. The self-discharge caused by the LiPS migration during the charge process (the so-called "shuttle effect") often leads to the capacity decay of Li-S batteries. Herein, hollow structured metal oxide (Co3O4, Mn2O3, and NiO) submicro-spheres are prepared by a novel method and employed as efficient LiPS immobilizers. These Li-S batteries, based on the developed metal oxide spheres, possess outstanding rate capability and cycling stability. The best performing S/C/Co3O4 electrode delivers excellent cycling stability with only a 0.066% capacity decay per cycle during 550 cycles. Moreover, its discharge capacity is as high as 428 mA h g(-1) at a 3C rate which is far superior to that of bare S/C (115 mA h g(-1)) at 3C. The fast kinetics of the electrocatalytic conversion of LiPS on the developed Co3O4 electrode and its unique hollow structure are the key factors that lead to its outstanding performance as a Li-S battery cathode material.
机译:Li-S电池技术,具有较高的理论能力和能量密度,吸引了很多近年来作为一个可能的关注替代目前的锂离子电池技术。是一种严重的容量衰减效应,对吗很大程度上源于解散多硫化锂扩散(嘴唇)在充电和放电周期形成的。造成的自放电嘴唇迁移在充电过程中(所谓的“航天飞机效应”)常常会导致容量衰减的Li-S电池。氧化(Co3O4 Mn2O3, NiO) submicro-spheres是由一个新颖的方法和使用高效的嘴唇防盗控制系统。电池,基于发达金属氧化物领域,拥有优秀的能力和速度循环稳定性。电极提供良好的循环稳定性只有0.066%的容量衰减每循环在550年周期。容量高达428 mA在3 c h g (1)率远优于光秃秃的S / C马(115 h g(1))在3 c。electrocatalytic转换的嘴唇开发Co3O4电极及其独特的空心导致其结构的关键因素杰出的表现作为Li-S电池阴极材料。

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