Tian Cong, Wang Jielei, Sun Ruoxuan, Ali Tariq, Wang Hongfei, Xie Bin-Bin, Zhong Yijun, Hu Yong
Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, Department of Chemistry, Zhejiang Normal University, Jinhua, 321004, P. R. China.
Hangzhou Institute of Advanced Studies, Zhejiang Normal University, Hangzhou, 311231, P. R. China.
Angew Chem Int Ed Engl. 2023 Oct 16;62(42):e202310970. doi: 10.1002/anie.202310970. Epub 2023 Sep 8.
The large-scale applicability of Zn-metal anodes is severely impeded by the issues such as the dendrite growth, complicated hydrogen evolution, and uncontrollable passivation reaction. Herein, a negatively charged carboxylated double-network hydrogel electrolyte (Gelatin/Sodium alginate-acetate, denoted as Gel/SA-acetate) has been developed to stabilize the interfacial electrochemistry, which restructures a type of Zn ion solvent sheath optimized via a chain-liquid synergistic effect. New hydrogen bonds are reconstructed with water molecules by the zincophilic functional groups, and directional migration of hydrated Zn ions is therefore induced. Concomitantly, the robust chemical bonding of such hydrogel layers to the Zn slab exhibits a desirable anti-catalytic effect, thereby greatly diminishing the water activity and eliminating side reactions. Subsequently, a symmetric cell using the Gel/SA-acetate electrolyte demonstrates a reversible plating/stripping performance for 1580 h, and an asymmetric cell reaches a state-of-the-art runtime of 5600 h with a high average Coulombic efficiency of 99.9 %. The resultant zinc ion hybrid capacitors deliver exceptional properties including the capacity retention of 98.5 % over 15000 cycles, energy density of 236.8 Wh kg , and high mechanical adaptability. This work is expected to pave a new avenue for the development of novel hydrogel electrolytes towards safe and stable Zn anodes.
锌金属阳极的大规模应用受到枝晶生长、复杂的析氢反应和不可控的钝化反应等问题的严重阻碍。在此,一种带负电荷的羧基化双网络水凝胶电解质(明胶/海藻酸钠-醋酸盐,记为Gel/SA-醋酸盐)被开发出来以稳定界面电化学,它通过链-液协同效应重构了一种优化的锌离子溶剂化鞘。亲锌官能团与水分子重建了新的氢键,从而诱导了水合锌离子的定向迁移。同时,这种水凝胶层与锌板之间强大的化学键表现出理想的抗催化作用,从而大大降低了水活性并消除了副反应。随后,使用Gel/SA-醋酸盐电解质的对称电池展示了1580小时的可逆电镀/剥离性能,非对称电池达到了5600小时的先进运行时间,平均库仑效率高达99.9%。所得的锌离子混合电容器具有卓越的性能,包括在15000次循环中容量保持率为98.5%、能量密度为236.8 Wh kg以及高机械适应性。这项工作有望为开发新型水凝胶电解质以实现安全稳定的锌阳极开辟一条新途径。