Zhang Bao, Yao Jia, Wu Chao, Li Yuanjian, Liu Jia, Wang Jiaqi, Xiao Tao, Zhang Tao, Cai Daqian, Wu Jiawen, Seh Zhi Wei, Xi Shibo, Wang Hao, Sun Wei, Wan Houzhao, Fan Hong Jin
School of Materials and Energy, University of Electronic Science and Technology of China, Chengdu, PR China.
School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore, Singapore.
Nat Commun. 2025 Jan 2;16(1):71. doi: 10.1038/s41467-024-55657-1.
Metal anodes hold significant promise for next-generation energy storage, yet achieving highly reversible plating/stripping remains challenging due to dendrite formation and side reactions. Here we present a tailored electrolyte design to surpass 99.9% Coulombic efficiency (CE) in zinc metal anodes by co-engineering salts and solvents to address two critical factors: plating morphology and the anode-electrolyte interface. By integrating a dual-salt approach and organic co-solvent design, these issues can be effectively addressed. The resulting hybrid dual-salt electrolyte renders CE of 99.95% at 1 mA cm at a medium concentration (3.5 m). Building upon the near-unity CE, an anode-free cell with ZnI cathode can stably run more than 1000 cycles under practical conditions with minimal capacity loss. Our findings provide a promising pathway for the design of reversible metal anodes, advancing metal-based battery technologies for broader energy storage applications.
金属阳极在下一代储能领域具有巨大潜力,然而由于枝晶形成和副反应,实现高度可逆的电镀/脱镀仍然具有挑战性。在此,我们提出一种定制的电解质设计,通过对盐和溶剂进行协同工程,以解决两个关键因素:电镀形态和阳极-电解质界面,从而使锌金属阳极的库仑效率(CE)超过99.9%。通过整合双盐方法和有机共溶剂设计,这些问题可以得到有效解决。由此产生的混合双盐电解质在中等浓度(3.5 m)下,1 mA cm时的CE为99.95%。基于接近100%的CE,具有ZnI阴极的无阳极电池在实际条件下可以稳定运行超过1000次循环,容量损失最小。我们的研究结果为可逆金属阳极的设计提供了一条有前景的途径,推动基于金属的电池技术在更广泛的储能应用中的发展。