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Challenges in the Scale-Up Process of Si/C Anode Coatings with Different Si Solid Contents

机译:不同Si固含量的Si / C阳极涂层的放大工艺面临的挑战

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In order to make electromobility commercially affordable for society, a number of challenges still need to be overcome. In addition to the lowest possible manufacturing costs, performance, sustainability and the C02 balance of the product life cycle play a decisive role. At the chair of production engineering of e-mobility components (PEM) of the RWTH Aachen University, we develop innovative ideas and concrete solutions along the entire value chain, which are evaluated through the construction of prototypes at first and implemented in industry relevant applications afterwards. Starting at the lowest level of battery production, cell chemistry is one important aspect for improving battery performance. The low specific capacity of commercially available graphite anodes is one limiting factor in the development of Li-ion batteries. To increase the performance, substances with enhanced properties can be incorporated into the anode material. Silicon is one of the potential additives, which has a specific capacity that is more than an order of magnitude greater than that of graphitic carbon. However, due to the high volume change of silicon particles during charging and discharging, the development of a cycle-stable Si/C-coating is the focus of many research projects. In addition, the mixing and coating process of Si/C slurries poses some challenges due to the preferred formation of Si agglomerates. The goal of this work is to develop a mixing and coating procedure to get homogeneous Si/C coatings with different silicon content on copper foil. With regard to industrial production, the scale-up from laboratory scale to a pilot plant of the mixing and coating process is evaluated. In order to ensure a transfer of the developed mixing and coating process to the currently used industrial manufacturing processes, comparable slurry formulations are used with respect to the solid content as well as the selection of binder and carbon black. Pouch cells and coin cells with standard lithium iron phosphate cathodes were then built up. Influences of the Si content on the charging and discharging process were analysed. On a laboratory scale, slurries could be produced in a mixing process for less than one hour, resulting in homogeneous Si/C coatings with Si solid content between 5 - 50%. No agglomeration formation is observed on light microscopic images with a magnification factor of 132. In addition, the coatings exhibit good adhesion to the copper foil, which is within the same size range as the adhesion of the pure graphite coating. The scale- up procedure showed a big difference in the mixing process compared to the laboratory scale, which has to be further optimized by adjusting the mixing and addition times. This work is funded by the German Federal Ministry of Education and Research (BMBF). anode material; silicon; graphitic carbon; scale-up.
机译:为了使电动汽车在商业上可为社会买得起,仍然需要克服许多挑战。除了尽可能降低制造成本外,性能,可持续性和产品生命周期中的CO2平衡也起着决定性的作用。在亚琛工业大学电动汽车零部件生产工程(PEM)的主持下,我们在整个价值链中提出了创新的想法和具体的解决方案,这些想法和解决方案首先通过原型构建进行评估,然后在行业相关应用中实施。从最低的电池生产水平开始,电池化学是提高电池性能的重要方面之一。市售石墨阳极的低比容量是锂离子电池开发中的限制因素之一。为了提高性能,可以将具有增强性能的物质掺入阳极材料中。硅是潜在的添加剂之一,其比容量比石墨碳的比容量大一个数量级。然而,由于在充电和放电过程中硅颗粒的体积变化很大,因此开发稳定循环的Si / C涂层是许多研究项目的重点。另外,由于优选形成了Si附聚物,因此Si / C浆料的混合和涂覆过程提出了一些挑战。这项工作的目的是开发一种混合和涂覆工艺,以在铜箔上获得具有不同硅含量的均匀Si / C涂层。关于工业生产,评估了从实验室规模到混合和涂覆过程中试工厂的规模扩大。为了确保将开发的混合和涂布工艺转移到当前使用的工业生产工艺中,就固体含量以及粘合剂和炭黑的选择而言,使用了可比的浆料配方。然后建立具有标准磷酸铁锂阴极的袋式电池和纽扣电池。分析了硅含量对充放电过程的影响。在实验室规模上,可以在混合过程中生产浆料少于一小时,从而得到具有5-50%的Si固体含量的均匀Si / C涂层。在放大率为132的光学显微图像上未观察到团聚形成。此外,涂层与铜箔的粘合性好,与纯石墨涂层的粘合力在相同的尺寸范围内。与实验室规模相比,按比例放大程序显示出混合过程的巨大差异,必须通过调整混合和添加时间进一步优化这种规模。这项工作由德国联邦教育和研究部(BMBF)资助。阳极材料;硅;石墨碳放大。

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