Yanjie Wang, Ning Li, Huiyan Liu, Juan Shi, Yuequn Li, Xukai Wu, Zhuo Wang, Chao Huang, Kongyao Chen, Dianbo Zhang, Tianyu Wu, Ping Li, Cuixia Liu, Liwei Mi
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引用次数: 1
摘要
不可控的锌枝晶和副反应严重降低了锌阳极的循环稳定性,制约了含水锌离子电池的商业化。本研究将PAN基(PAN, PAN/PMMA)纳米纤维膜在Zn上原位静电纺丝,具有均匀的“亲锌-疏水”位点,有效地防止了有害的副反应,控制了Zn的镀/剥离行为。PAN/PMMA中丰富的高负官能团(C≡N和C=O)与Zn2+有较强的配位作用,可以加速Zn2+的脱溶,增加Zn2+的迁移次数。此外,亲锌位点的均匀分布有助于创造均匀的锌沉积环境,使锌水平沉积成为可能。同时,PAN/PMMA中非极性碳骨架固有的“疏水性”可以防止Zn腐蚀和析氢反应(HER)副反应,从而提高Zn阳极的循环稳定性。结果表明,PAN/PMMA@Zn对称电池表现出卓越的速率性能和长周期稳定性,在10 mA cm−2和低于65 mV的低极化电压下保持2000多个循环的高效运行。这种原位构建pan基纳米纤维膜修饰Zn阳极的策略具有制备简单、一步成膜、无粘结剂、功能化单元分布均匀等优点,不仅为开发高级Zn阳极提供了具体方案,也为开发“隔膜-阳极”一体化锌基电池奠定了一定的研究基础。图形抽象
Uncontrollable Zn dendrites and side reactions seriously downgrade the cycling stability of the Zn anode, and restrict the commercialization of aqueous zinc ion batteries. Here, PAN-based (PAN, PAN/PMMA) nanofiber membranes with uniform “zincophilic-hydrophobic” sites have been in-situ electrospun on Zn to effectively prevent harmful side reactions and control Zn plating/stripping behavior. The abundant highly-negative functional groups (C≡N and C=O) of PAN/PMMA have strong coordination interactions with Zn2+, which can accelerate Zn2+ desolvation and increase the Zn2+ migration number. Furthermore, the even distribution of zincophilic sites can help create a uniform Zn deposition environment and enable horizontal Zn deposition. Simultaneously, the inherent “hydrophobicity” of the nonpolar carbon skeleton in PAN/PMMA can prevent Zn corrosion and hydrogen evolution reaction (HER) side reactions, thus improving the cycling stability of the Zn anode. As a result, PAN/PMMA@Zn symmetric cells demonstrated remarkable rate performance and long cycling stability, sustaining efficient operation for over 2000 cycles at 10 mA cm− 2 with a low polarization voltage below 65 mV. This Zn anode modification strategy by in-situ constructed PAN-based nanofiber membrane has the advantages of simple-preparation, one-step membrane construction, binder-free, uniform distribution of functionalized units, which not only provides a specific scheme for developing advanced Zn anode but also lays a certain research foundation for developing “separator-anode” integrated Zn-based batteries.
期刊介绍:
Advanced Fiber Materials is a hybrid, peer-reviewed, international and interdisciplinary research journal which aims to publish the most important papers in fibers and fiber-related devices as well as their applications.Indexed by SCIE, EI, Scopus et al.
Publishing on fiber or fiber-related materials, technology, engineering and application.