Du Zehang, Shen Shengtao, Su Xiaozheng, Zhuang Yuhang, Chen Meixin, Zhang Xinyue, Lin Ziqing, Yu Li, Zhou Piaopiao, Wu Mingmao, Lyu Xiaolin, Zou Zhigang
Key Laboratory of Advanced Materials Technologies, International (HongKong Macao and Taiwan) Joint Laboratory on Advanced Materials Technologies, College of Materials Science and Engineering, Fuzhou University, Fuzhou, Fujian, 350108, China.
Department of Critical Care Medicine, Fujian Medical University Union Hospital, Fuzhou, Fujian, 350001, China.
Adv Mater. 2025 Jun;37(24):e2502328. doi: 10.1002/adma.202502328. Epub 2025 Apr 17.
Hydrogel electrolytes have garnered extensive attention in zinc ion batteries due to their excellent flexibility and good safety. However, their limited mechanical properties, low ionic conductivity, and poor Zn transference number pose significant challenges for developing high-performance zinc ion batteries. Herein, this work constructs a 3D supramolecular network capable of locking anions and active water molecules through the abundant hydrogen bonding interactions between aramid nanofibers, polyvinyl alcohol, and anions. This network synergistically enhances the mechanical properties (with a mechanical strength of 0.88 MPa and a toughness of 3.28 MJ m), ionic conductivity (4.22 S m), and Zn transference number (0.78). As a result, the supramolecular composite hydrogel electrolyte can effectively inhibit dendrite growth and side reactions, facilitate interface regulation, and enable uniform zinc deposition. The Zn anode exhibits a cycle life of 1500 h at 5 mA cm and 5 mAh cm, with an average coulombic efficiency of 99.1% over 600 cycles. Additionally, the Zn||polyaniline full cell maintains a high capacity retention of 78% after 9100 cycles at 1 A g. The assembled pouch cells demonstrate good flexibility, deformability, and compression resistance. This work provides valuable insights into the design of high-performance hydrogel electrolytes for zinc ion batteries.
水凝胶电解质因其优异的柔韧性和良好的安全性在锌离子电池中受到广泛关注。然而,它们有限的机械性能、低离子电导率和较差的锌迁移数对开发高性能锌离子电池构成了重大挑战。在此,这项工作构建了一种三维超分子网络,该网络能够通过芳纶纳米纤维、聚乙烯醇和阴离子之间丰富的氢键相互作用来锁定阴离子和活性水分子。该网络协同增强了机械性能(机械强度为0.88兆帕,韧性为3.28兆焦/立方米)、离子电导率(4.22西门子/米)和锌迁移数(0.78)。结果,超分子复合水凝胶电解质能够有效抑制枝晶生长和副反应,促进界面调控,并实现均匀的锌沉积。锌阳极在5毫安/平方厘米和5毫安时/平方厘米的条件下表现出1500小时的循环寿命,在600次循环中的平均库仑效率为99.1%。此外,锌||聚苯胺全电池在1安/克的电流密度下循环9100次后仍保持78%的高容量保持率。组装的软包电池表现出良好的柔韧性、可变形性和抗压性。这项工作为锌离子电池高性能水凝胶电解质的设计提供了有价值的见解。