多元素协同优化 Mg-Ge-In-Zn 作为一次镁-空气电池的理想阳极

IF 2.2 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Ming Yin, Yaqi Pang, Bingbing Yang, Minchi Wang, Yan Li
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引用次数: 0

摘要

在这项研究中,我们采用了一种策略,通过利用在镁中具有不同固溶解度的 Ge、In 和 Zn 元素来构建 Mg-Ge-In-Zn 合金的微观结构。利用一系列检测技术发现,Mg-Ge-In-Zn 合金的微观结构主要包括两个次生相:Mg2Ge 和 MgZn。与纯镁和 Mg-Ge-In 合金相比,Mg-Ge-In-Zn 合金具有更优异的耐腐蚀性、更高更稳定的放电电压以及更高的阳极利用效率。此外,Mg-Ge-In-Zn 合金的放电过程包括几个阶段。最初,Mg2Ge 相会激活与其接触的邻近区域。随后,一旦 Mg2Ge 相脱离邻近基体,MgZn 相就会成为维持放电行为的主要因素。最后,新暴露的 Mg2Ge 和 MgZn 相会产生放电活性位点,进一步激活合金表面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Multi-elemental Synergistic Optimization of Mg-Ge-In-Zn as a Promising Anode for Primary Mg-Air Batteries

Multi-elemental Synergistic Optimization of Mg-Ge-In-Zn as a Promising Anode for Primary Mg-Air Batteries

In this work, a strategy was employed to construct the microstructure of Mg-Ge-In-Zn alloys through the utilization of Ge, In, and Zn elements with varying solid solubility in magnesium. Utilizing a range of detection techniques, it was discovered that the microstructure of Mg-Ge-In-Zn alloys primarily comprises two secondary phases: Mg2Ge and MgZn. Compared to pure magnesium and Mg-Ge-In alloys, Mg-Ge-In-Zn alloys exhibit superior corrosion resistance, higher and more stable discharge voltages, as well as enhanced anode utilization efficiency. Furthermore, the discharge process of Mg-Ge-In-Zn alloys encompasses several stages. Initially, the Mg2Ge phase activates the adjacent regions in contact with it. Subsequently, once the Mg2Ge phase detaches from the neighboring matrix, the MgZn phase becomes the primary contributor, maintaining the discharge behavior. Finally, newly exposed Mg2Ge and MgZn phases generate discharge active sites, further activating the alloy surface.

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来源期刊
Journal of Materials Engineering and Performance
Journal of Materials Engineering and Performance 工程技术-材料科学:综合
CiteScore
3.90
自引率
13.00%
发文量
1120
审稿时长
4.9 months
期刊介绍: ASM International''s Journal of Materials Engineering and Performance focuses on solving day-to-day engineering challenges, particularly those involving components for larger systems. The journal presents a clear understanding of relationships between materials selection, processing, applications and performance. The Journal of Materials Engineering covers all aspects of materials selection, design, processing, characterization and evaluation, including how to improve materials properties through processes and process control of casting, forming, heat treating, surface modification and coating, and fabrication. Testing and characterization (including mechanical and physical tests, NDE, metallography, failure analysis, corrosion resistance, chemical analysis, surface characterization, and microanalysis of surfaces, features and fractures), and industrial performance measurement are also covered
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