Yang Jian, Feng Tingting, Zhi Chen, Li Jingzhu, Zhou Haiping, Chen Cheng, Song Yaochen, Wu Mengqiang
School of Materials and Energy, University of Electronic Science and Technology of China (UESTC), Chengdu 611731, PR China.
School of Materials and Energy, University of Electronic Science and Technology of China (UESTC), Chengdu 611731, PR China.
J Colloid Interface Sci. 2021 Oct;599:819-827. doi: 10.1016/j.jcis.2021.04.067. Epub 2021 Apr 17.
Lithium metal is the most promising anode materials for the next generation lithium ion battery. However, the electrode polarization leads to the formation of dendrites and "dead lithium", which degrades the performance of lithium metal batteries and induce a variety of security risk. The electrode polarization and lithium dendrites can be suppressed by lithium metal composite electrode. Herein, a simple and effective strategy is adopted to construct nickel and lithium bimetallic composite (NiLi-BC) electrode by a double roll process. The Ni framework inside the electrode can optimize the electric field and Li distribution at the electrode/electrolyte interface and induce the uniform lithium deposition. As a result, the NiLi-BC exhibits a lithium dendrite-free feature and stable cycling performance under a low overpotential (<15 mV throughout 2180 h at 1 mA cm with a deposition capacity of 1 mAh cm). Moreover, the assembled NiLi-BC||LiFePO coin cell and pouch cell exhibit improved capability and stable cycling performance. Finally, the in-situ optical microscopy and in-situ Raman spectroscopy are employed to obtain a better understanding of the interfacial structure and chemical component during the Li plating and striping processes. The scheme of this study of the NiLi electrode has great practical application value.
锂金属是下一代锂离子电池最具前景的负极材料。然而,电极极化会导致枝晶和“死锂”的形成,这会降低锂金属电池的性能并引发各种安全风险。锂金属复合电极可以抑制电极极化和锂枝晶。在此,采用一种简单有效的策略,通过双辊工艺构建镍锂双金属复合(NiLi-BC)电极。电极内部的镍骨架可以优化电极/电解质界面处的电场和锂分布,并促使锂均匀沉积。结果,NiLi-BC在低过电位下(在1 mA cm² 、沉积容量为1 mAh cm² 的条件下,在2180小时内始终<15 mV)表现出无锂枝晶的特性和稳定的循环性能。此外,组装的NiLi-BC||LiFePO硬币电池和软包电池展现出更好的性能和稳定的循环性能。最后,采用原位光学显微镜和原位拉曼光谱来更好地了解锂电镀和脱镀过程中的界面结构和化学成分。本研究中NiLi电极的方案具有很大的实际应用价值。