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用纳米线和亲镁银位点修饰铜网以诱导均匀的镁沉积。

Modification of a Cu Mesh with Nanowires and Magnesiophilic Ag Sites to Induce Uniform Magnesium Deposition.

作者信息

Wang Fei, Wu Dongzheng, Zhuang Yichao, Li Jialin, Nie Xianzhen, Zeng Jing, Zhao Jinbao

机构信息

College of Chemistry and Chemical Engineering, State-Province Joint Engineering Laboratory of Power Source Technology for New Energy Vehicle, State Key Laboratory of Physical Chemistry of Solid Surfaces, Engineering Research Center of Electrochemical Technology, Ministry of Education, Collaborative Innovation Center of Chemistry for Energy Materials, Xiamen University, Xiamen 361005, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2022 Jul 13;14(27):31148-31159. doi: 10.1021/acsami.2c08470. Epub 2022 Jun 28.

Abstract

The nature of dendrite-free magnesium (Mg) metal anodes is an important advantage in rechargeable magnesium batteries (RMBs). However, this traditional cognition needs to be reconsidered due to inhomogeneous Mg deposits under extreme electrochemical conditions. Herein, we report a three-dimensional (3D) Cu-based host with magnesiophilic Ag sites (denoted as "Ag@3D Cu mesh") to regulate Mg deposition behaviors and achieve uniform Mg electrodeposition. Mg deposition/stripping behaviors are obviously improved under the cooperative effect of nanowire structures and Ag sites. The test results indicate that nucleation overpotentials are reduced distinctly and cycling performances are prolonged, suggesting that the general rules of 3D structures and affinity sites improve the durability and reversibility of Mg deposition/stripping. Besides, a unique concave surface structure can induce Mg to deposit into the interior of the interspace, which utilizes Mg more efficiently and leads to improved electrochemical performances with limited Mg content. Furthermore, in situ optical microscopic images show that the Ag@3D Cu mesh can attain a smooth surface, nearly without Mg protrusions, under 8.0 mA cm, which prevents premature short circuits. This report is a pioneering work to demonstrate the feasibility of modification of Cu-based current collectors and the necessity of functional current collectors to improve the possibility of practical applications for RMBs.

摘要

无枝晶镁(Mg)金属负极的特性是可充电镁电池(RMB)的一个重要优势。然而,由于在极端电化学条件下镁沉积不均匀,这种传统认知需要重新审视。在此,我们报道了一种具有亲镁银位点的三维(3D)铜基主体(表示为“Ag@3D铜网”),以调节镁的沉积行为并实现均匀的镁电沉积。在纳米线结构和银位点的协同作用下,镁的沉积/剥离行为得到明显改善。测试结果表明,成核过电位明显降低,循环性能延长,这表明三维结构和亲和位点的一般规律提高了镁沉积/剥离的耐久性和可逆性。此外,独特的凹面结构可诱导镁沉积到间隙内部,从而更有效地利用镁,并在镁含量有限的情况下提高电化学性能。此外,原位光学显微镜图像显示,在8.0 mA cm下,Ag@3D铜网可获得几乎没有镁凸起的光滑表面,这可防止过早短路。本报告是一项开创性工作,证明了修饰铜基集流体的可行性以及功能性集流体对于提高RMB实际应用可能性的必要性。

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