Zeng Li, Ling Shangwen, Du Dayue, He Hanna, Li Xiaolong, Zhang Chuhong
State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute, Sichuan University, Chengdu, 610065, P. R. China.
Adv Sci (Weinh). 2023 Nov;10(32):e2303716. doi: 10.1002/advs.202303716. Epub 2023 Sep 22.
Despite tremendous efforts that have been dedicated to high-performance electrochemical energy storage devices (EESDs), traditional electrode fabrication processes still face the daunting challenge of limited energy/power density or compromised mechanical compliance. 3D thick electrodes can maximize the utilization of z-axis space to enhance the energy density of EESDs but still suffer from limitations in terms of poor mechanical stability and sluggish electron/ion transport. Direct ink writing (DIW), an eminent branch of 3D printing technology, has gained popularity in the manufacture of 3D electrodes with intricately designed architectures and rationally regulated porosity, promoting a triple boost in areal mass loading, ion diffusion kinetics, and mechanical flexibility. This focus review highlights the fundamentals of printable inks and typical configurations of 3D-printed devices. In particular, preparation strategies for high-performance and multifunctional 3D-printed EESDs are systemically discussed and classified according to performance evaluation metrics such as high areal energy density, high power density, high volumetric energy density, and mechanical flexibility. Challenges and prospects for the fabrication of high-performance 3D-printed EESDs are outlined, aiming to provide valuable insights into this thriving field.
尽管人们在高性能电化学储能装置(EESD)方面付出了巨大努力,但传统电极制造工艺仍面临着能量/功率密度有限或机械柔顺性受损的严峻挑战。三维厚电极可以最大限度地利用z轴空间来提高EESD的能量密度,但在机械稳定性差和电子/离子传输缓慢方面仍存在局限性。直接墨水书写(DIW)作为三维打印技术的一个重要分支,在制造具有复杂设计结构和合理调控孔隙率的三维电极方面受到欢迎,促进了面质量负载、离子扩散动力学和机械柔韧性的三重提升。本重点综述突出了可打印墨水的基本原理以及三维打印器件的典型结构。特别地,根据高面能量密度、高功率密度、高体积能量密度和机械柔韧性等性能评估指标,系统地讨论并分类了高性能和多功能三维打印EESD的制备策略。概述了高性能三维打印EESD制造面临的挑战和前景,旨在为这个蓬勃发展的领域提供有价值的见解。