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基于电化学原子力显微镜揭示银修饰锂表面的沉积与溶解行为

Unraveling the Deposition and Dissolution Behavior of the Ag-Modified Li Surface Based on Electrochemical Atomic Force Microscopy.

作者信息

To-A-Ran Weerawat, Mastoi Naila Riaz, Song Young Jae, Kim Seong Heon, Kim Young-Jun

机构信息

SKKU Advanced Institute of Nano Technology (SAINT), Sungkyunkwan University, Suwon 16419, Republic of Korea.

Department of Nano Science and Technology, Sungkyunkwan University, Suwon 16419, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2024 Sep 11;16(36):47406-47415. doi: 10.1021/acsami.4c06822. Epub 2024 Sep 2.

Abstract

Lithium is a promising anode material for advanced batteries because of its high capacity and low redox potential. However, its practical use is hindered by nonuniform Li deposition and dendrite formation, leading to safety concerns in Li metal batteries. Our study shows that Ag-based materials enhance the uniformity of Li deposition on Ag-modified Li (AgLi) surfaces, thereby addressing these key challenges. This improvement is due to the strong affinity of Ag for Li, which promotes uniform deposition and dissolution. Additionally, the AgLi surface demonstrated an improved cycling stability, which is crucial for long-term battery reliability. Emphasizing our analytical approach, we utilized comprehensive techniques such as Kelvin probe force microscopy (KPFM) and electrochemical atomic force microscopy (EC-AFM) to locally analyze the electrical properties and unravel the Li deposition/dissolution mechanisms. KPFM analysis provided crucial insights into surface potential variations, while EC-AFM highlighted topographical changes during the Li deposition and dissolution processes, contributing significantly to the development of safer and more efficient Li metal batteries.

摘要

锂因其高容量和低氧化还原电位,是一种很有前景的先进电池负极材料。然而,锂沉积不均匀和枝晶形成阻碍了其实际应用,导致锂金属电池存在安全隐患。我们的研究表明,银基材料可提高锂在银改性锂(AgLi)表面沉积的均匀性,从而解决这些关键挑战。这种改进归因于银对锂的强亲和力,它促进了锂的均匀沉积和溶解。此外,AgLi表面表现出更好的循环稳定性,这对电池的长期可靠性至关重要。为强调我们的分析方法,我们利用了开尔文探针力显微镜(KPFM)和电化学原子力显微镜(EC-AFM)等综合技术,对电学性质进行局部分析,并揭示锂的沉积/溶解机制。KPFM分析提供了关于表面电位变化的关键见解,而EC-AFM突出了锂沉积和溶解过程中的形貌变化,这对开发更安全、更高效的锂金属电池有重要贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/caef/11404483/c345ac6c2676/am4c06822_0001.jpg

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