Modified sol-gel synthesis of lithium ternary oxide

M. G. D. Guaita, L. H. Dall’Antonia, Paulo Rogério Catarini da Silva, A. Urbano
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Abstract

Lithium-ion batteries currently equip portable electronic devices, such as smartphones and laptops, and are the choice to power electric vehicles. The scarcity of raw materials in nature, however, has required the development of new technologies and the ternary lithium compound LiNi1/3Mn1/3Co1/3O2 has stood out as an alternative for replacing part of the cobalt in LiCoO2 by nickel and manganese, which are more abundant, reducing the electrode’s cost. The sol-gel route for synthesis of ternary electrode materials has been widely used, but it faces problems of volumetric expansion due to the decomposition of organic material during calcination. To improve the synthesis of the ternary compound, a modified sol-gel route with control of the heating kinetics in the pre-calcination step and without pH control was investigated in this study. The compound was analyzed by X-ray diffraction, Rietveld refinement, Fourier transform infrared absorption spectroscopy, and Raman that showed the purification of the ternary phase with appropriate crystallinity for application as electrode in batteries from 700 ºC. In conclusion, ternary synthesis with rate control during heat treatment may be a useful alternative for industrial scale-up production.
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改性溶胶-凝胶法合成三元氧化锂
锂离子电池目前装备于便携式电子设备,如智能手机和笔记本电脑,也是电动汽车的动力选择。然而,自然界中原材料的稀缺性要求新技术的发展,三元锂化合物LiNi1/3Mn1/3Co1/3O2已经脱颖而出,可以用镍和锰代替LiCoO2中的部分钴,镍和锰含量更丰富,降低了电极的成本。溶胶-凝胶法制备三元电极材料已得到广泛应用,但由于煅烧过程中有机物的分解,存在体积膨胀的问题。为了提高三元化合物的合成效率,本文研究了一种控制预煅烧阶段加热动力学且不控制pH的改性溶胶-凝胶途径。通过x射线衍射、Rietveld细化、傅里叶变换红外吸收光谱和拉曼光谱对化合物进行了分析,结果表明,该化合物在700℃的温度下纯化得到了结晶度合适的三元相,可用于电池电极。总之,在热处理过程中控制速率的三元合成可能是工业规模生产的一个有用的替代方案。
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12 weeks
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