植物前驱体聚集结构对钠离子电池碳负极倍率性能的影响

IF 18.5 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Tianyun Zhang, Tian Zhang, Changhong Zhao, Fujuan Wang, Lirong Zhang, Yu Li, Liyu Zhang, Fen Ran
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引用次数: 0

摘要

植物硬碳是一种极有前途的钠离子电池负极材料。许多研究对前体的选择作出了重大努力;然而,对植物基硬碳低倍率性能的综合研究还很有限。事实上,前驱体中纤维素和半纤维素的聚集结构对材料性能的影响被低估了。本研究对木棉纤维的固有聚集结构进行了优化。前驱体的聚集结构显著影响炭化后高度无序碳的含量,从而影响衍生阳极材料的速率性能。为了解决这些问题,创新地使用铝离子来支持粉碎的纤维素-半纤维素阵列,制备的碳阳极在电流密度从0.05增加到3.2 a g−1时具有高达≈70%的容量保持率。本研究不仅阐明了结构导致速率性能下降的机理,而且创新性地引入了离子耦合的方法对结构进行修复,从而实现了速率性能的优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Revealing Effect of Aggregation Structure of Plant Precursors on Rate Performance of Carbon Anode for Sodium‐Ion Batteries
Plant‐based hard carbon is a highly promising anode material for sodium‐ion batteries. Numerous studies have dedicated significant effort to the selection of precursors; however, there has been limited comprehensive research on the low‐rate performance of plant‐based hard carbon. Indeed, the aggregated structure of cellulose and hemicellulose in precursors has been underestimated regarding its influence on the material properties. In this study, the inherent aggregated structure of kapok fiber is optimized. It has been observed that the aggregation structure of the precursor significantly influences the content of highly disordered carbon post‐carbonization, consequently impacting the rate performance of the derived anode material. To address the problems, aluminum ions innovatively are used to support the crushed cellulose‐hemicellulose arrays, and the prepared carbon anode has a capacity retention rate of up to≈70% at a current density increased from 0.05 to 3.2 A g−1. This research not only clarifies the mechanism by which the structure leads to the decline of rate performance but also innovatively introduces the ion coupling method to repair the structure, thereby achieving the optimization of rate performance.
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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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