Neidhart Lukas, Fröhlich Katja, Eshraghi Nicolas, Cupid Damian, Winter Franz, Jahn Marcus
Electric Vehicle Technologies, Center for Low Emission Transport, Austrian Institute of Technology GmbH (AIT), Giefinggasse 2, 1210 Vienna, Austria.
Institute of Chemical, Environmental and Bioscience Engineering, TU Wien, Getreidemarkt 9, 1060 Vienna, Austria.
Nanomaterials (Basel). 2022 Jan 19;12(3):317. doi: 10.3390/nano12030317.
Manufacturing thick electrodes for Li-ion batteries is a challenging task to fulfill, but leads to higher energy densities inside the cell. Water-based processing even adds an extra level of complexity to the procedure. The focus of this work is to implement a multi-layered coating in an industrially relevant process, to overcome issues in electrode integrity and to enable high electrochemical performance. LiNi0.8Mn0.1Co0.1O2 (NMC811) was used as the active material to fabricate single- and multi-layered cathodes with areal capacities of 8.6 mA h cm. A detailed description of the manufacturing process is given to establish thick defect-free aqueous electrodes. Good inter-layer cohesion and adhesion to the current collector foil are achieved by multi-layering, as confirmed by optical analysis and peel testing. Furthermore, full cells were assembled and rate capability tests were performed. These tests show that by multi-layering, an increase in specific discharge capacity (e.g., 20.7% increase for C/10) can be established for all tested C-rates.
制造用于锂离子电池的厚电极是一项具有挑战性的任务,但这会使电池内部具有更高的能量密度。水基加工甚至给该过程增加了额外的复杂性。这项工作的重点是在工业相关工艺中实现多层涂层,以克服电极完整性方面的问题并实现高电化学性能。LiNi0.8Mn0.1Co0.1O2(NMC811)用作活性材料,以制造面积容量为8.6 mA h cm的单层和多层阴极。给出了制造过程的详细描述,以制备无缺陷的厚水性电极。通过光学分析和剥离测试证实,多层结构实现了良好的层间内聚力和对集流体箔的附着力。此外,组装了全电池并进行了倍率性能测试。这些测试表明,通过多层结构,在所有测试的倍率下都可以实现比放电容量的增加(例如,在C/10时增加20.7%)。