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通过人工三维框架实现均匀的锌通量分布:长寿命无枝晶锌阳极的增强离子转移动力学

Uniform Zn Flux Distribution Achieved by an Artificial Three-Dimensional Framework: The Enhanced Ion-Transfer Kinetics for Long-Life and Dendrite-Free Zn Anodes.

作者信息

Li Yue-Ming, Li Wen-Hao, Diao Wan-Yue, Tao Fang-Yu, Wu Xing-Long, Zhang Xiao-Ying, Zhang Jing-Ping

机构信息

Advanced Energy Materials Research Center, Faculty of Chemistry Northeast Normal University, Changchun 130024, P. R. China.

Key Laboratory for UV Light-Emitting Materials and Technology, Northeast Normal University, Changchun 130024, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2022 May 25;14(20):23558-23569. doi: 10.1021/acsami.2c04888. Epub 2022 May 11.

DOI:10.1021/acsami.2c04888
PMID:35544741
Abstract

Zinc metal has been naturally considered as the most anticipated anode material for zinc-ion batteries (ZIBs), given the benefits of large volume specific capacity, low electrode potential, and inexpensive cost. However, the growth of zinc dendrites and the corrosion of hydrogen evolution during the Zn ion deposition process are the bottlenecks restricting the large-scale application of zinc metal. Herein, we report the modification of zinc anodes by utilizing a ball-milling clay precipitate (designated as BMC, consisting of the unetched MAX phase and the TiCT phase) to construct a three-dimensional (3D) framework on the surface of zinc foil (Zn@BMC). Different from the close stacking of conventionally prepared MXene sheets after film formation, the BMC coating firmly adheres to the zinc surface through the binder. The abundant internal space relieves the stress during the volume change of the Zn metal and uniformizes the Zn ion flux. Consequently, Zn@BMC not only achieves a stable long cycle (2000 h, 0.5 mA h cm) but also inhibits the side reaction of hydrogen evolution by physically separating the electrolyte and the zinc metal anode. We reckon that our research will aid in clarifying the design principles governing the interface of the zinc metal anode in ZIBs.

摘要

鉴于锌金属具有大容量比容量、低电极电位和低成本等优点,它一直被自然地视为锌离子电池(ZIBs)最受期待的负极材料。然而,锌离子沉积过程中锌枝晶的生长和析氢腐蚀是限制锌金属大规模应用的瓶颈。在此,我们报道了通过利用球磨粘土沉淀物(命名为BMC,由未蚀刻的MAX相和TiCT相组成)对锌负极进行改性,以在锌箔(Zn@BMC)表面构建三维(3D)框架。与成膜后传统制备的MXene片紧密堆叠不同,BMC涂层通过粘合剂牢固地粘附在锌表面。丰富的内部空间缓解了锌金属体积变化过程中的应力,并使锌离子通量均匀化。因此,Zn@BMC不仅实现了稳定的长循环(2000小时,0.5 mA h cm),还通过物理分离电解质和锌金属负极抑制了析氢副反应。我们认为我们的研究将有助于阐明ZIBs中锌金属负极界面的设计原则。

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Nanomaterials (Basel). 2025 Jan 27;15(3):204. doi: 10.3390/nano15030204.
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200 MPa cold isostatic pressing creates surface-microcracks in a Zn foil for scalable and long-life zinc anodes.200兆帕的冷等静压会在锌箔中产生表面微裂纹,以制造可扩展且寿命长的锌阳极。
Nanoscale Adv. 2023 Jan 7;5(3):934-942. doi: 10.1039/d2na00682k. eCollection 2023 Jan 31.