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极端工作条件下用于可逆快速充电锌碘电池的动态雅努斯界面设计

Dynamical Janus Interface Design for Reversible and Fast-Charging Zinc-Iodine Battery under Extreme Operating Conditions.

作者信息

Zong Wei, Li Jiantao, Zhang Chengyi, Dai Yuhang, Ouyang Yue, Zhang Leiqian, Li Jianwei, Zhang Wei, Chen Ruwei, Dong Haobo, Gao Xuan, Zhu Jiexin, Parkin Ivan P, Shearing Paul R, Lai Feili, Amine Khalil, Liu Tianxi, He Guanjie

机构信息

Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering, International Joint Research Laboratory for Nano Energy Composites, Jiangnan University, Wuxi 214122, P. R. China.

Christopher Ingold Laboratory, Department of Chemistry, University College London, 20 Gordon Street, London WC1H 0AJ, U.K.

出版信息

J Am Chem Soc. 2024 Aug 7;146(31):21377-21388. doi: 10.1021/jacs.4c03615. Epub 2024 Jul 24.

Abstract

Aqueous zinc (Zn) iodine (I) batteries have emerged as viable alternatives to conventional metal-ion batteries. However, undesirable Zn deposition and irreversible iodine conversion during cycling have impeded their progress. To overcome these concerns, we report a dynamical interface design by cation chemistry that improves the reversibility of Zn deposition and four-electron iodine conversion. Due to this design, we demonstrate an excellent Zn-plating/-stripping behavior in Zn||Cu asymmetric cells over 1000 cycles with an average Coulombic efficiency (CE) of 99.95%. Moreover, the Zn||I full cells achieve a high-rate capability (217.1 mA h g at 40 A g; C rate of 189.5C) at room temperature and enable stable cycling with a CE of more than 99% at -50 °C at a current density of 0.05 A g. In situ spectroscopic investigations and simulations reveal that introducing tetraethylammonium cations as ion sieves can dynamically modulate the electrode-electrolyte interface environment, forming the unique water-deficient and chloride ion (Cl)-rich interface. Such Janus interface accounts for the suppression of side reactions, the prevention of ICl decomposition, and the enrichment of reactants, enhancing the reversibility of Zn-stripping/-plating and four-electron iodine chemistry. This fundamental understanding of the intrinsic interplay between the electrode-electrolyte interface and cations offers a rational standpoint for tuning the reversibility of iodine conversion.

摘要

水系锌碘电池已成为传统金属离子电池的可行替代方案。然而,循环过程中不良的锌沉积和不可逆的碘转化阻碍了它们的发展。为了克服这些问题,我们报道了一种通过阳离子化学进行的动态界面设计,该设计提高了锌沉积和四电子碘转化的可逆性。基于这种设计,我们在锌||铜不对称电池中展示了超过1000次循环的优异锌电镀/剥离行为,平均库仑效率(CE)为99.95%。此外,锌||碘全电池在室温下实现了高倍率性能(40 A g时为217.1 mA h g;C倍率为189.5C),并在-50°C、0.05 A g的电流密度下实现了CE超过99%的稳定循环。原位光谱研究和模拟表明,引入四乙铵阳离子作为离子筛可以动态调节电极-电解质界面环境,形成独特的缺水和富氯离子(Cl)界面。这种Janus界面解释了副反应的抑制、ICl分解的防止以及反应物的富集,增强了锌剥离/电镀和四电子碘化学的可逆性。对电极-电解质界面与阳离子之间内在相互作用的这种基本理解为调节碘转化的可逆性提供了一个合理的观点。

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