†Academy of Fundamental and Interdisciplinary Sciences, Harbin Institute of Technology, Harbin, 150001, China.
‡Department of Chemical Engineering, Biointerfaces Institute, University of Michigan, Ann Arbor, Michigan 48109, United States.
ACS Nano. 2015 May 26;9(5):5009-17. doi: 10.1021/nn507186k. Epub 2015 May 11.
Deficiencies of cathode materials severely limit cycling performance and discharge rates of Li batteries. The key problem is that cathode materials must combine multiple properties: high lithium ion intercalation capacity, electrical/ionic conductivity, porosity, and mechanical toughness. Some materials revealed promising characteristics in a subset of these properties, but attaining the entire set of often contrarian characteristics requires new methods of materials engineering. In this paper, we report high surface area 3D composite from reduced graphene oxide loaded with LiFePO4 (LFP) nanoparticles made by layer-by-layer assembly (LBL). High electrical conductivity of the LBL composite is combined with high ionic conductivity, toughness, and low impedance. As a result of such materials properties, reversible lithium storage capacity and Coulombic efficiency were as high as 148 mA h g(-1) and 99%, respectively, after 100 cycles at 1 C. Moreover, these composites enabled unusually high reversible charge-discharge rates up to 160 C with a storage capacity of 56 mA h g(-1), exceeding those of known LFP-based cathodes, some of them by several times while retaining high content of active cathode material. The study demonstrates that LBL-assembled composites enable resolution of difficult materials engineering tasks.
阴极材料的缺陷严重限制了锂电池的循环性能和放电速率。关键问题在于阴极材料必须结合多种特性:高锂离子嵌入容量、导电性/离子导电性、多孔性和机械韧性。一些材料在这些特性的一部分中显示出了有前景的特性,但要获得通常相互矛盾的整套特性,需要采用新的材料工程方法。在本文中,我们报告了通过逐层组装 (LBL) 制备的负载 LiFePO4 (LFP) 纳米颗粒的还原氧化石墨烯的高表面积 3D 复合材料。LBL 复合材料具有高导电性,同时还具有高离子导电性、韧性和低阻抗。由于具有这些材料特性,在 1 C 下经过 100 次循环后,可逆锂存储容量和库仑效率高达 148 mA h g(-1)和 99%。此外,这些复合材料能够实现高达 160 C 的超高可逆充放电速率,而存储容量为 56 mA h g(-1),超过了已知的基于 LFP 的阴极,其中一些甚至高出数倍,同时保持了高含量的活性阴极材料。该研究表明,LBL 组装的复合材料能够解决困难的材料工程任务。