电解质
材料科学
快离子导体
陶瓷
墨水池
3D打印
微观结构
化学工程
纳米技术
固态
复合材料
电极
工程物理
化学
工程类
物理化学
作者
Dennis W. McOwen,Shaomao Xu,Yunhui Gong,Wen Yang,Griffin L. Godbey,Jack E. Gritton,Tanner Hamann,Jiaqi Dai,Gregory T. Hitz,Liangbing Hu,Eric D. Wachsman
标识
DOI:10.1002/adma.201707132
摘要
Solid-state batteries have many enticing advantages in terms of safety and stability, but the solid electrolytes upon which these batteries are based typically lead to high cell resistance. Both components of the resistance (interfacial, due to poor contact with electrolytes, and bulk, due to a thick electrolyte) are a result of the rudimentary manufacturing capabilities that exist for solid-state electrolytes. In general, solid electrolytes are studied as flat pellets with planar interfaces, which minimizes interfacial contact area. Here, multiple ink formulations are developed that enable 3D printing of unique solid electrolyte microstructures with varying properties. These inks are used to 3D-print a variety of patterns, which are then sintered to reveal thin, nonplanar, intricate architectures composed only of Li7 La3 Zr2 O12 solid electrolyte. Using these 3D-printing ink formulations to further study and optimize electrolyte structure could lead to solid-state batteries with dramatically lower full cell resistance and higher energy and power density. In addition, the reported ink compositions could be used as a model recipe for other solid electrolyte or ceramic inks, perhaps enabling 3D printing in related fields.
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