Lu Huibing, Hua Weimin, Zhang Zhengchunyu, An Xuguang, Feng Jinkui, Xi Baojuan, Xiong Shenglin
School of Chemistry and Chemical Engineering, Shandong University, Jinan, 250100, P. R. China.
School of Mechanical Engineering, Chengdu University, Chengdu, 610106, P. R. China.
Small. 2024 Jul;20(30):e2312187. doi: 10.1002/smll.202312187. Epub 2024 Mar 19.
Zn dendrite growth and side reactions restrict the practical use of Zn anode. Herein, the design of a novel 3D hierarchical structure is demonstrated with self-zincophilic dual-protection constructed by ZnO and Zn nanoparticles immobilized on carbon fibers (ZnO/Zn⊂CF) as a versatile host on the Zn surface. The unique 3D frameworks with abundant zinc nucleation storage sites can alleviate the structural stress during the plating/stripping process and overpower Zn dendrite growth by moderating Zn flux. Moreover, given the dual protection design, it can reduce the contact area between active zinc and electrolyte, inhibiting hydrogen evolution reactions. Importantly, density functional theory calculations and experimental results confirm that the introduced O atoms in ZnO/Zn⊂CF enhance the interaction between Zn and the host and reduce Zn nucleation overpotential. As expected, the ZnO/Zn⊂CF-Zn electrode exhibits stable Zn plating/stripping with low polarization for 4200 h at 0.2 mA cm and 0.2 mAh cm. Furthermore, the symmetrical cell displays a significantly long cycling life of over 1800 h, even at 30 mA cm. The fabricated full cells also show impressive cycling performance when coupled with VO cathodes.
锌枝晶生长和副反应限制了锌阳极的实际应用。在此,展示了一种新型三维分级结构的设计,其具有通过固定在碳纤维上的ZnO和Zn纳米颗粒构建的自亲锌双保护结构(ZnO/Zn⊂CF),作为锌表面的通用主体。具有丰富锌成核存储位点的独特三维框架可以缓解电镀/剥离过程中的结构应力,并通过调节锌通量抑制锌枝晶生长。此外,鉴于双保护设计,它可以减少活性锌与电解质之间的接触面积,抑制析氢反应。重要的是,密度泛函理论计算和实验结果证实,ZnO/Zn⊂CF中引入的O原子增强了锌与主体之间的相互作用,并降低了锌成核过电位。正如预期的那样,ZnO/Zn⊂CF-Zn电极在0.2 mA cm和0.2 mAh cm下表现出稳定的锌电镀/剥离,低极化可达4200小时。此外,即使在30 mA cm下,对称电池也显示出超过1800小时的显著长循环寿命。当与VO阴极耦合时,制造的全电池也显示出令人印象深刻的循环性能。