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通过策略性界面工程实现锌迁移定向与加速以获得高度稳定的锌负极

Orienting and accelerating Zn migration by strategic interfacial engineering for achieving highly stable zinc anodes.

作者信息

Chen Chunxia, Xu Ao, Zhang Yuhang, Zhang Xinwei, Wang Yangyang, Yang Ying, Ren Tiantian, Liu Xiaojie, Diao Jinxiang

机构信息

Key Laboratory of Synthetic and Natural Functional Molecule of the Ministry of Education, College of Chemistry & Materials Science, Northwest University, Xi'an 710127, PR China.

School of Chemistry and Chemical Engineering, Yulin University, Yulin 719000, PR China.

出版信息

J Colloid Interface Sci. 2025 Nov 15;698:137995. doi: 10.1016/j.jcis.2025.137995. Epub 2025 May 26.

Abstract

Aqueous zinc-ion batteries (AZIBs) have emerged as a promising alternative to lithium-ion batteries owing to their abundant zinc resources, low cost, environmental friendliness, and impressive theoretical specific capacity of 820 mAh g. However, zinc anodes face significant challenges, including short cycle lifetimes and poor reversibility, primarily due to rampant dendrite growth and the inevitable hydrogen evolution reaction (HER). To address these issues, an artificial protective layer of Ca-doped LaCrO (denoted as LCCO2) was coated onto zinc foil utilizing a facile doctor blade casting method. Experimental results demonstrate that the dense and uniform LCCO2 coating effectively suppresses side reactions, regulates the electric field at the zinc anode interface, and facilitates rapid ion migration coupled uniform zinc deposition, thereby enhancing anode stability. Remarkably, symmetrical cells with LCCO2 coating exhibit a stable cycle lifespan of 1500 h at 5 mA cm, along with highly reversible zinc plating/stripping behavior. Furthermore, the LCCO2@Zn||MnO full cell also delivers a high reversible capacity of 174 mAh g after 500 cycles at 1 A g, underscoring the advantages of the LCCO2 protective layer in achieving highly reversible Zn anodes.

摘要

水系锌离子电池(AZIBs)因其锌资源丰富、成本低、环境友好以及令人印象深刻的820 mAh g理论比容量,已成为锂离子电池的一种有前景的替代品。然而,锌负极面临重大挑战,包括循环寿命短和可逆性差,主要原因是枝晶生长猖獗以及不可避免的析氢反应(HER)。为了解决这些问题,采用简便的刮刀铸造法在锌箔上涂覆了一层Ca掺杂的LaCrO人工保护层(表示为LCCO2)。实验结果表明,致密且均匀的LCCO2涂层有效地抑制了副反应,调节了锌负极界面处的电场,并促进了快速离子迁移与均匀的锌沉积,从而提高了负极稳定性。值得注意的是,具有LCCO2涂层的对称电池在5 mA cm下表现出1500 h的稳定循环寿命,以及高度可逆的锌电镀/剥离行为。此外,LCCO2@Zn||MnO全电池在1 A g下循环500次后也具有174 mAh g的高可逆容量,突出了LCCO2保护层在实现高度可逆锌负极方面的优势。

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