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Synthesis and Characteristics of Nano Crystalline LiAl_xMn_(2-x)O4 Cathode Material Using Solid State Combustion Method for Li-ion Batteries

机译:固态燃烧法制备锂离子电池纳米晶LiAl_xMn_(2-x)O4正极材料及其特性

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摘要

Lithium-ion batteries are most advanced batteries used for modem portable electronic devices such as mobile phones, notebook computers and cameraVecorders, They are also big potential for lithium-ion batteries to be used for electric vehicles, hybrid electric vehicles and stationary power storage, In particular, the later will bring a significant contribution to reduce green house gas emissions, global warming and climate change. Materials research is a key role in the development of next generation of advanced lithium-ion batteries with high energy density, high power density and long cycle life. LiMn2O4 has been emerging as a new cathode material for lithium ion batteries with low cost. But it suffers from loss of capacity during cycling. To improve the cycle performance of spinel LiMn2O4, Al doped LiMn2O4 powders are synthesized. A simple solid state combustion method has been tried for the preparation of nano particle size LiAl_xMn_(2-x)O4 powder with urea as the igniter and glycerol as the binding material. LiNOs, Al(NO3)3 and Mn(NO3)3 were mixed together to form a homogeneous paste. This paste was carefully heated to 100 °C in the muffle furnace and then the product is heated to 800 °C for 12 h. The obtained nano powder was subjected to XRD, TEM, TG/DTA and FTIR analysis. The particle size of the material was roughly calculated from the X-ray data using Scherrer equation. The TEM analysis was carried out in detail to confirm the particle size.
机译:锂离子电池是用于移动电话,笔记本电脑和cameraVecorder等现代便携式电子设备的最先进的电池,对于将锂离子电池用于电动汽车,混合动力电动汽车和固定式电力存储,它们也具有巨大的潜力。特别是,后者将为减少温室气体排放,全球变暖和气候变化做出重大贡献。材料研究是开发具有高能量密度,高功率密度和长循环寿命的下一代高级锂离子电池的关键作用。 LiMn2O4以低成本成为新兴的锂离子电池正极材料。但是它在循环期间遭受容量损失的困扰。为了提高尖晶石LiMn2O4的循环性能,合成了Al掺杂的LiMn2O4粉末。已经尝试了一种简单的固态燃烧方法,以尿素作为点火剂,甘油作为粘结材料,制备纳米粒径的LiAl_xMn_(2-x)O4粉末。将LiNO 3,Al(NO 3)3和Mn(NO 3)3混合在一起以形成均匀的糊剂。将该糊状物在马弗炉中小心地加热到100°C,然后将产品加热到800°C 12小时。对获得的纳米粉末进行XRD,TEM,TG / DTA和FTIR分析。使用谢勒方程从X射线数据粗略计算出材料的粒径。详细地进行TEM分析以确认粒径。

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