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Electrode Based on Oxyphosphates as Anode Materials for High Energy Density Lithium-ion Batteries

机译:高能密度锂离子电池用含氧磷酸盐作为负极材料的电极

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摘要

Lithium-ion batteries (Li-ion) are interesting devices for electrochemical energy storage for most emerging green technologies such as wind and solar technologies or hybrid and plug-in electric vehicles or for classical electrical devices such as laptops, phones or other electronic tools. Nevertheless, the oxygen release at high potentials in the present commercialized electrode materials (e.g. LiCoO2) leads to high thermal instability of these oxides and thus to many safety problems. This safety problem is more pronounced for stationary applications for which large size batteries were needed. Polyanionic materials in general, and particularly phosphates were well renowned by their high structural stability which are essential to overcome the above mentioned safety issue. Here, we present the structural and the electrochemical performances of three oxyphosphates M0.5TiOPO4 (M: Ni, Co, Fe). More than 300 mAh/g discharge capacity could be delivered by these phosphates under relatively high cycling rate. The lithium insertion/extraction mechanism is composed from an intercalation process for low lithium content to a conversion mechanism for higher lithium concentration leading to the extrusion of the transition metal M from the structure.
机译:锂离子电池(Li-ion)是用于大多数新兴绿色技术(例如风能和太阳能技术或混合动力和插电式电动汽车)或经典电气设备(例如笔记本电脑,电话或其他电子工具)的电化学能量存储的有趣设备。然而,在目前商业化的电极材料(例如LiCoO 2)中以高电势释放氧气会导致这些氧化物的高热不稳定性,并因此导致许多安全问题。对于需要大尺寸电池的固定式应用来说,这种安全性问题尤为突出。通常,聚阴离子材料,尤其是磷酸盐,以其高结构稳定性而广为人知,这对克服上述安全性问题至关重要。在这里,我们介绍了三种氧磷酸盐M0.5TiOPO4(M:Ni,Co,Fe)的结构和电化学性能。这些磷酸盐在相对较高的循环速率下可以提供超过300 mAh / g的放电容量。锂的插入/萃取机理由低锂含量的嵌入过程到高锂浓度的转化机理组成,从而导致过渡金属M从结构中挤出。

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