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通过受缓释药物启发的铟螯合树脂保护层稳定锌/电解质界面化学,用于高面积容量锌//钒电池。

Stabilizing Zn/electrolyte Interphasial Chemistry by a Sustained-Release Drug Inspired Indium-Chelated Resin Protective Layer for High-Areal-Capacity Zn//VO Batteries.

作者信息

Zhang Minghao, Li Siyang, Tang Rong, Sun Chenxi, Yang Jin, Chen Guanhong, Kang Yuanhong, Lv Zeheng, Wen Zhipeng, Li Cheng Chao, Zhao Jinbao, Yang Yang

机构信息

State Key Lab of Physical Chemistry of Solid Surfaces, State-Province Joint Engineering Laboratory of Power Source Technology for New Energy Vehicle, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, 361005, P. R. China.

School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou, 510006, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2024 Jul 15;63(29):e202405593. doi: 10.1002/anie.202405593. Epub 2024 Jun 14.

Abstract

For zinc-metal batteries, the instable chemistry at Zn/electrolyte interphasial region results in severe hydrogen evolution reaction (HER) and dendrite growth, significantly impairing Zn anode reversibility. Moreover, an often-overlooked aspect is this instability can be further exacerbated by the interaction with dissolved cathode species in full batteries. Here, inspired by sustained-release drug technology, an indium-chelated resin protective layer (Chelex-In), incorporating a sustained-release mechanism for indium, is developed on Zn surface, stabilizing the anode/electrolyte interphase to ensure reversible Zn plating/stripping performance throughout the entire lifespan of Zn//VO batteries. The sustained-release indium onto Zn electrode promotes a persistent anticatalytic effect against HER and fosters uniform heterogeneous Zn nucleation. Meanwhile, on the electrolyte side, the residual resin matrix with immobilized iminodiacetates anions can also repel detrimental anions (SO and polyoxovanadate ions dissolved from VO cathode) outside the electric double layer. This dual synergetic regulation on both electrode and electrolyte sides culminates a more stable interphasial environment, effectively enhancing Zn anode reversibility in practical high-areal-capacity full battery systems. Consequently, the bio-inspired Chelex-In protective layer enables an ultralong lifespan of Zn anode over 2800 h, which is also successfully demonstrated in ultrahigh areal capacity Zn//VO full batteries (4.79 mAh cm).

摘要

对于锌金属电池,锌/电解质界面区域不稳定的化学性质会导致严重的析氢反应(HER)和枝晶生长,显著损害锌阳极的可逆性。此外,一个常被忽视的方面是,在全电池中,这种不稳定性会因与溶解的阴极物质相互作用而进一步加剧。在此,受缓释药物技术启发,在锌表面制备了一种含铟螯合树脂保护层(Chelex-In),其具有铟的缓释机制,可稳定阳极/电解质界面,确保在整个锌//钒氧化物电池寿命期间实现可逆的锌电镀/剥离性能。缓释到锌电极上的铟对析氢反应具有持久的抗催化作用,并促进均匀的异质锌成核。同时,在电解质一侧,带有固定化亚氨基二乙酸根阴离子的残余树脂基体也能将有害阴离子(从钒氧化物阴极溶解的硫酸根和多钒酸根离子)排斥在双电层之外。电极和电解质两侧的这种双重协同调节最终形成了更稳定的界面环境,有效地提高了实际高面积容量全电池系统中锌阳极的可逆性。因此,受生物启发的Chelex-In保护层使锌阳极的超长寿命超过2800小时,这在超高面积容量的锌//钒氧化物全电池(4.79 mAh cm)中也得到了成功验证。

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