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用于先进水系锌电池的锌在与锡纳米颗粒互连的氮掺杂碳纤维上的均匀沉积

Homogeneous Deposition of Zinc on N-Doped Carbon Fibers Interconnected with Sn Nanoparticles for Advanced Aqueous Zinc Batteries.

作者信息

Wang Bixia, Hao Jiayi, Xu Hui, Sun Minxi, Wu Chun, Qin Wei, Wu Xingqiao, Wei Qiliang

机构信息

College of Materials Science and Engineering, Changsha University of Science and Technology, Changsha, Hunan 410114, China.

Institute for Carbon Neutralization, College of Chemistry and Materials Engineering, Wenzhou University, Wenzhou, Zhejiang 325035, China.

出版信息

ACS Appl Mater Interfaces. 2024 Sep 4;16(35):46879-46888. doi: 10.1021/acsami.4c07396. Epub 2024 Aug 21.

DOI:10.1021/acsami.4c07396
PMID:39165085
Abstract

Currently, inhomogeneous distribution of Zn on the surface of the Zn anode is still the essential reason for dendrite formation and unsatisfactory stability of zinc ion batteries. Given the merits of strong interaction between Sn and Zn, as well as a low nucleation barrier during Zn deposition, the combination of metallic Sn with carbon material is expected to improve the deposition of zinc ions and inhibit the growth of zinc dendrites by guiding the homogeneous plating/stripping of zinc on the electrode surface. In this article, zincophilic Sn nanoparticles with low nucleation barriers and strong interaction with Zn were embedded into 3D N-doped carbon nanofibers using a simple electrostatic spinning technique. Accordingly, when serving as an artificial coating layer for the zinc metal anode, an ultrastable Sn@NCNFs@Zn||Sn@NCNFs@Zn symmetric cell can be achieved for over 3500 h with a low nucleation overpotential of 29.1 mV. Significantly, the full cell device assembled with the as-prepared anode and MnO cathode exhibits desirable electrochemical behaviors. Moreover, this simple method could be extended to other metal-carbon composites, and to ensure ease in scaling up as required. Such significant approach can provide an effective strategy for the design of high-performance zinc anodes.

摘要

目前,锌阳极表面锌的不均匀分布仍然是锌离子电池枝晶形成和稳定性不佳的根本原因。鉴于锡与锌之间具有强相互作用以及锌沉积过程中形核势垒较低的优点,金属锡与碳材料的组合有望通过引导锌在电极表面均匀地沉积/剥离来改善锌离子的沉积并抑制锌枝晶的生长。在本文中,采用简单的静电纺丝技术将具有低形核势垒且与锌有强相互作用的亲锌锡纳米颗粒嵌入三维氮掺杂碳纳米纤维中。因此,当用作锌金属阳极的人工涂层时,可实现超稳定的Sn@NCNFs@Zn||Sn@NCNFs@Zn对称电池,其循环超过3500小时,形核过电位低至29.1 mV。值得注意的是,用所制备的阳极和MnO阴极组装的全电池装置表现出理想的电化学行为。此外,这种简单的方法可以扩展到其他金属-碳复合材料,并确保根据需要易于扩大规模。这种重要的方法可为高性能锌阳极的设计提供有效策略。

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