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Enhancing the Thermal and Upper Voltage Performance of Ni-Rich Cathode Material by a Homogeneous and Facile Coating Method: Spray-Drying Coating with Nano-Al2O3

机译:通过均匀,便捷的涂层方法提高富镍阴极材料的热性能和高电压性能:纳米Al2O3的喷雾干燥涂层

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The electrochemical performance of Ni-rich cathode material at high temperature (>50 degrees C) and upper voltage operation (>4.3 V) is a challenge for next-generation lithium-ion batteries (LIBs) because of the rapid capacity degradation over cycling. Here we report improved performance of LiNi0.8Co0.15Al0.05O2 materials via a LiAlO2 coating, which was prepared from a Ni0.80Co0.15Al0.05(OH)(2) precursor by spray-drying coating with nano-Al2O3. Investigations by X-ray diffraction, scanning electron microscopy, energy-dispersive Xray spectroscopy, and transmission electron microscopy revealed that an Al2O3 layer is uniformly distributed on the precursor and a LiAlO2 layer on the as-prepared cathode material. Such a coating shell acts as a scavenger to protect the cathode material from attack by HF and serious side reactions, which remarkably enhances the cycle performance at 55 degrees C and upper operating voltage (4.4 and 4.5 V). In particular, the sample with a 2% Al2O3 coating shows capacity retentions of 90.40%, 85.14%, 87.85%, and 81.1% after 150 cycles at a rate of 1.0C at room temperature, 55 degrees C, 4.4 V, and 4.5 V, respectively, which are significantly higher than those of the pristine one. This is mainly due to the significant improvement of the structural stability led by the effective coating technique, which could be extended to other cathode materials to obtain LIBs with enhanecd safety and excellent cycling stability.
机译:富镍正极材料在高温(> 50摄氏度)和高电压操作(> 4.3 V)下的电化学性能对下一代锂离子电池(LIB)来说是一个挑战,因为其容量会随着循环时间迅速降低。在这里,我们报告了通过LiAlO2涂层改善了LiNi0.8Co0.15Al0.05O2材料的性能,该涂层是由Ni0.80Co0.15Al0.05(OH)(2)前体通过喷雾干燥纳米Al2O3涂层制备的。通过X射线衍射,扫描电子显微镜,能量色散X射线光谱和透射电子显微镜的研究表明,Al 2 O 3层均匀地分布在前体上,而LiAlO 2层均匀地分布在所制备的阴极材料上。这种涂层壳起到清除剂的作用,以保护阴极材料免受HF的侵蚀和严重的副反应,从而显着增强了55摄氏度和较高的工作电压(4.4和4.5 V)下的循环性能。尤其是,具有2%Al2O3涂层的样品在室温,55摄氏度,4.4 V和4.5 V的1.0C速率下进行150次循环后,其容量保持率分别为90.40%,85.14%,87.85%和81.1%。分别显着高于原始的那些。这主要归因于有效涂覆技术带来的结构稳定性的显着改善,可以将其扩展到其他阴极材料以获得具有增强的安全性和出色的循环稳定性的LIB。

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