Zhang Chi, Li Canglong, Chen Dongping, He Zhongqian, Cheng Yuanzi, You Tiancheng, Zhou Jie, Yu Huaming, Xie Zeqiang, Kang Chao, Chen Yuejiao
North Alabama International College of Engineering and Technology, Guizhou University, Guiyang 550025, PR China.
State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, PR China.
J Colloid Interface Sci. 2025 Mar 15;682:232-241. doi: 10.1016/j.jcis.2024.11.215. Epub 2024 Nov 28.
The persistent challenges of diminished coulombic efficiency (CE) and the formation of Zn dendrites at the Zn anode interface substantially hinder the cycle life of aqueous Zn-ion batteries (AZIBs), thereby impeding their widespread deployment. To address these issues, multifunctional 2-amino-5-guanidino-pentanoic acid (AGPA) additive is introduced into the electrolyte, as a novel Zn flux regulator (ZFR) to improve the reversibility and durability of Zn anodes. The distinctive zincophilicity of amino groups empowers such ZFR with a higher adsorption energy, enabling the construction of a multifunctional molecular adsorption layer on Zn electrode surface. Simultaneously, leveraging the exceptional nucleophilic characteristics of polar carboxyl groups, AGPA molecules tend to form chelating bonds with Zn for manipulating the interface chemistry and solvation chemistry. The functional groups in ZFR work in synergy to attract zinc ions for homogenizing Zn flux and suppress the interfacial side reactions, resulting in uniform dendrite-free Zn deposition. Consequently, the Zn//Zn symmetrical cell achieves an extended cycle life of 5500 h. Moreover, the ZFR enables stable operation of the full batteries with an ultra-long cycling lifespan of 6000 cycles at 5 A/g, showcasing the effectiveness of ZFR in advancing the commercialization of AZIBs.
库仑效率(CE)降低以及锌阳极界面处锌枝晶的形成这两个长期存在的挑战,严重阻碍了水系锌离子电池(AZIBs)的循环寿命,进而阻碍了它们的广泛应用。为了解决这些问题,将多功能的2-氨基-5-胍基戊酸(AGPA)添加剂引入电解液中,作为一种新型的锌通量调节剂(ZFR),以提高锌阳极的可逆性和耐久性。氨基独特的亲锌性赋予这种ZFR更高的吸附能,使其能够在锌电极表面构建多功能分子吸附层。同时,利用极性羧基出色的亲核特性,AGPA分子倾向于与锌形成螯合键,以调控界面化学和溶剂化化学。ZFR中的官能团协同作用,吸引锌离子以使锌通量均匀化,并抑制界面副反应,从而实现无枝晶的均匀锌沉积。因此,锌//锌对称电池实现了5500小时的延长循环寿命。此外,ZFR使全电池能够稳定运行,在5 A/g的电流下具有6000次循环的超长循环寿命,展示了ZFR在推动AZIBs商业化方面的有效性。