Ling Shangwen, Li Xiaolong, Zhou Tiantian, Yuan Ruoxin, Sun Shuxian, He Hanna, Zhang Chuhong
State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute, Sichuan University, Chengdu, 610065, P. R. China.
Adv Mater. 2023 Apr;35(14):e2211201. doi: 10.1002/adma.202211201. Epub 2023 Feb 22.
Conventional bulky and rigid planar architecting power systems are difficult to satisfy the growing demand for wearable applications. 1D fiber batteries bearing appealing features of miniaturization, adaptability, and weavability represent a promising solution, yet challenges remain pertaining to energy density and scalability. Herein, an ingenious densifiable functional ink is invented to fabricate scalable, flexible, and high-mass-loading fiber lithium-ion batteries (LIBs) by adopting a fast ink-extrusion technology. In the formulated ink, pyrrole-modified reduced graphene oxide is elaborately introduced and exerts multiple influences; it not only assembles carbon nanotubes and poly(vinylidene fluoride-co-hexafluoropropylene) to compose a sturdy, conductive, and agglomeration-free 3D network that realizes an ultra-high content (75 wt%) of the active materials and endows the electrode excellent flexibility but also serves as a capillary densification inducer, encouraging an extremely large linear mass loading (1.01 mg cm per fiber) and packing density (782.1 mg cm ). As a result, the assembled fiber LIBs deliver impressive linear and volumetric energy densities with superb mechanical compliance, demonstrating the best performance among all the reported extruded fiber batteries. This work highlights a highly effective and facile approach to fabricate high-performance fiber energy storage devices for future practical wearable applications.
传统的笨重且刚性的平面架构电源系统难以满足可穿戴应用不断增长的需求。具有小型化、适应性和可编织性等吸引人特性的一维纤维电池是一种很有前景的解决方案,但在能量密度和可扩展性方面仍存在挑战。在此,通过采用快速油墨挤出技术,发明了一种巧妙的可致密化功能油墨,用于制造可扩展、灵活且高负载量的纤维锂离子电池(LIBs)。在所配制的油墨中,精心引入了吡咯改性的还原氧化石墨烯并发挥多种作用;它不仅组装碳纳米管和聚(偏二氟乙烯 - 六氟丙烯)以构成坚固、导电且无团聚的三维网络,实现活性材料的超高含量(75重量%)并赋予电极优异的柔韧性,而且还作为毛细管致密化诱导剂,促使实现极大的线性质量负载(每根纤维1.01毫克/厘米)和堆积密度(782.1毫克/厘米)。结果,组装的纤维LIBs展现出令人印象深刻的线性和体积能量密度以及出色的机械柔韧性,在所有已报道的挤出纤维电池中表现最佳。这项工作突出了一种高效且简便的方法,用于制造面向未来实际可穿戴应用的高性能纤维储能装置。