Development of a novel CNT-composited high entropy boride (MnFeCoNiZnAl)1/6B cathode material for ultra-stable and long-life sodium-ion batteries: DFT and experimental study

IF 8.3 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Shun Li , Haoran Peng , Likai Tong , Yifei Xie , Bo Zhang , Xiuli Fu
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Abstract

In this work, we utilized density functional theory (DFT) computations to design and optimize a multi-component boride, (MnFeCoNiZnAl)1/6B, which exhibited enhanced stability and charge storage capabilities. The synthesis process involved a liquid-phase method to create an amorphous (MnFeCoNiZnAl)1/6B compound supported by carbon nanotubes (CNTs), resulting in improved electrochemical performance. Characterization data confirmed successful formation of the high-entropy boride and indicated a higher specific surface area and broader pore size distribution for the CNT-supported version. Computational models suggested that the high-entropy modification broadened the voltage window, enabling better matching with negative electrodes. Theoretical calculations estimated the maximum theoretical sodium-ion adsorption capacity and specific capacities, with (MnFeCoNiZnAl)1/6B achieving the highest value of 827.69 mAh g-1. The study demonstrates the successful fabrication of an innovative high-entropy boride-based cathode with excellent specific capacity and long-term cycling stability under high current loads, offering promise for large-scale energy storage applications as a cost-effective and safe alternative to lithium-ion batteries.

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来源期刊
Acta Materialia
Acta Materialia 工程技术-材料科学:综合
CiteScore
16.10
自引率
8.50%
发文量
801
审稿时长
53 days
期刊介绍: Acta Materialia serves as a platform for publishing full-length, original papers and commissioned overviews that contribute to a profound understanding of the correlation between the processing, structure, and properties of inorganic materials. The journal seeks papers with high impact potential or those that significantly propel the field forward. The scope includes the atomic and molecular arrangements, chemical and electronic structures, and microstructure of materials, focusing on their mechanical or functional behavior across all length scales, including nanostructures.
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