Improving Registration Accuracy of Multilayer Screen-Printed Graphite Electrodes with Secondary Pore Networks for Fast Charging Lithium-ion Batteries

V. Palaniappan, D. Maddipatla, S. Ahmadi, H. Emani, G. Wang, T. Hanson, B. B. Narakathu, B. Bazuin, Q. Wu, M. Atashbar
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引用次数: 4

Abstract

A multi-layer screen-printed flexible graphite electrode-based lithium-ion battery was fabricated with improved registration accuracy. Laser patterning process was employed to create the registration marks on the substrate for aligning the samples during multi-layer screen-printing. A homogenous ink slurry was prepared by mixing graphite as active material along with carbon black (Super-P C45) as conductive additive and polyvinylidene fluoride (PVDF) as binder in N-Methyl-2-pyrrolidone (NMP) solvent. A two-layered lithium-ion battery electrode was prepared by depositing the homogeneous slurry via screen consisting of 100 µm pore pattern design with edge to edge distance of 100 µm (between pores) on a flexible copper foil using screen printing process. The two layers provided the required mass loading of 2.6 mg/cm2 which results in high-capacity density. The pore structures of the second electrode layer were aligned well with the first printed electrode layer with the help of registration marks during screen printing process. The presence of secondary pore networks facilitates paths for accelerated ionic transfer of lithium ions along the electrode leading to fast-charging batteries with high capacity density. The electrodes were calendered to obtain an average porosity of ~33% for 2 layers. Half-cell was assembled using lithium foil as anode, screen-printed graphite ink as cathode and lithium hexafluorophosphate (LiPF6) as electrolyte. The multilayer graphite electrode processed with well aligned pore networks (feasible because of laser based registration marks) and screen-printing showed a capacity of 348mAh/g at 0.1 C formation at the end of 3 cycles.
提高快速充电锂离子电池用二次孔网络多层丝网印刷石墨电极配准精度
制备了一种多层丝网印刷柔性石墨电极基锂离子电池,提高了配准精度。在多层丝网印刷过程中,采用激光图案化工艺在基板上产生配准标记,用于对正样品。以石墨为活性材料,炭黑(super - pc45)为导电添加剂,聚偏氟乙烯(PVDF)为粘结剂,在n -甲基-2-吡罗烷酮(NMP)溶剂中混合制备了均匀的油墨浆料。采用丝网印刷工艺,在柔性铜箔上沉积均匀浆液,浆液由100 μ m孔隙模式设计组成,孔隙之间的边缘距离为100 μ m。这两层提供了所需的2.6 mg/cm2的质量负载,从而产生了高容量密度。在丝网印刷过程中,借助配准标记,第二电极层的孔结构与第一电极层对齐良好。二次孔网络的存在促进了锂离子沿电极加速离子转移的路径,从而实现了高容量密度的快速充电电池。对电极进行压延处理,使两层电极的平均孔隙率达到~33%。以锂箔为阳极,丝网印刷石墨墨水为阴极,六氟磷酸锂(LiPF6)为电解质组装半电池。多层石墨电极经过排列良好的孔网络处理(由于基于激光的配准标记是可行的)和丝网印刷,在3个循环结束时,在0.1℃形成时的容量为348mAh/g。
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