Guo Gaoli, Tan Xiaoping, Wang Kaidi, Zhang Huang
Ningbo Institute of Northwestern Polytechnical University & Institute of Flexible Electronics Northwestern Polytechnical University, Xi'an, 710072, P. R. China.
Research & Development Institute of Northwestern Polytechnical University in Shenzhen, Shenzhen, 518057, P. R. China.
ChemSusChem. 2022 Jun 8;15(11):e202200313. doi: 10.1002/cssc.202200313. Epub 2022 May 4.
Aqueous zinc batteries have been regarded as a promising energy storage technology due to their high energy, high material abundance, low toxicity, and intrinsic safety. NASICON-type materials have been proposed as efficient cathodes for rechargeable batteries, yet they suffer from fast degradation and low Coulombic efficiency in aqueous batteries. Here we demonstrate that a rationally designed aqueous electrolyte containing a supporting Na salt and polymer additive can efficiently suppress the water activity through hydrogen bonding and facilitate the anion involvement in interfacial reactions, thus enabling the stable operation of sodium superionic conductor (NASICON) cathodes in aqueous zinc batteries. As exemplified by a Na V (PO ) cathode, the cell with zinc metal anode exhibits high cycling Coulombic efficiencies (around 99.9 % in average) with a steady output voltage and capacity retention for 300 cycles. This work addresses the potential issues with NASICON-type cathodes in aqueous zinc batteries and proposes an effective solution via fundamental interphasial chemistry to design efficient and sustainable aqueous electrolytes.
水系锌电池因其高能量、高材料丰度、低毒性和本质安全性,被视为一种很有前景的储能技术。NASICON型材料已被提议作为可充电电池的高效阴极,但它们在水系电池中存在快速降解和低库仑效率的问题。在此,我们证明,一种合理设计的含有支持性钠盐和聚合物添加剂的水系电解质,可以通过氢键有效抑制水活性,并促进阴离子参与界面反应,从而使钠超离子导体(NASICON)阴极在水系锌电池中稳定运行。以NaV(PO)阴极为例,采用锌金属阳极的电池表现出高循环库仑效率(平均约99.9%),输出电压稳定,容量在300次循环中保持不变。这项工作解决了水系锌电池中NASICON型阴极的潜在问题,并通过基础界面化学提出了一种有效的解决方案,以设计高效且可持续的水系电解质。