Peng Huili, Wang Chunting, Wang Dongdong, Song Xinxin, Zhang Chenghui, Yang Jian
Key Laboratory of Colloid and Interface Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, Shandong University, Jinan, 250100, P. R. China.
School of Control Science and Engineering, Shandong University, Jinan, 250061, P. R. China.
Angew Chem Int Ed Engl. 2023 Aug 21;62(34):e202308068. doi: 10.1002/anie.202308068. Epub 2023 Jul 17.
Zn metal as one of the promising anodes of aqueous batteries possesses notable advantages, but it faces severe challenges from severe side reactions and notorious dendrite growth. Here, ultrathin nanosheets of α-zirconium phosphate (ZrP) are explored as an electrolyte additive. The nanosheets not only create a dynamic and reversible interphase on Zn but also promote the Zn transportation in the electrolyte, especially in the outer Helmholtz plane near ZrP. Benefited from the enhanced kinetics and dynamic interphase, the pouch cells of Zn||LiMn O using this electrolyte remarkably improve electrochemical performance under harsh conditions, i.e. Zn powders as the Zn anode, high mass loading, and wide temperatures. The results expand the materials available for this dynamic interphase, provide an insightful understanding of the enhanced charge transfer in the electrolyte, and realize the combination of dynamic interphase and enhanced kinetics for all-climate performance.
锌金属作为水系电池中一种很有前景的负极材料,具有显著优势,但面临着严重副反应和严重枝晶生长等严峻挑战。在此,探索了超薄的磷酸锆(ZrP)纳米片作为电解质添加剂。这些纳米片不仅在锌表面形成了动态可逆的界面,还促进了锌在电解质中的传输,尤其是在靠近ZrP的外亥姆霍兹平面。受益于增强的动力学和动态界面,使用这种电解质的Zn||LiMn O软包电池在苛刻条件下(即使用锌粉作为锌负极、高负载量和宽温度范围)显著改善了电化学性能。这些结果拓展了可用于这种动态界面的材料,为电解质中增强的电荷转移提供了深刻理解,并实现了动态界面与增强动力学相结合以实现全气候性能。