基于闪蒸焦耳加热的生物质衍生硬碳快速闭孔调控增强钠离子储存

IF 18.5 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Yuqian Qiu, Yanxia Su, Xiaohan Jing, Hao Xiong, Duo Weng, Jian‐Gan Wang, Fei Xu, Hongqiang Wang
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引用次数: 0

摘要

封闭孔隙对于提高能量密度钠离子电池硬碳(HC)负极材料的低电位(<0.1 V)平台容量和初始库仑效率至关重要。然而,缺乏简单有效的闭孔构建策略严重阻碍了其未来的商业化。本文提出了一种生物质衍生hc的快速闭孔调控策略,即通过预处理和闪蒸焦耳加热(FJH)。预热处理对于将脆弱的生物质转化为抵抗过度石墨化的高碳化框架至关重要。FJH处理有助于生成富集的封闭孔隙,这些孔隙被形成的碳壁包围,层间间距扩大,成为可接近的Na+通道。这一策略在生物质原料中显示出显著的普遍性和适用性,能够将各种易碳化前体快速转化为高产量(例如,与HC25 - J - 1500相比,HC600 - J - 1500的产量增加了约14倍)和闭孔富集的hc。优化后的样品具有377 mAh g−1的可逆容量和93.3%的初始库仑效率,这是用FJH制备的记录值,甚至可以与传统碳化相媲美。综合实验结果表明,钠离子的高效存储源于封闭纳米孔中的孔隙填充机制。这项工作为合理设计高性能hc提供了一种简单而通用的闭孔调节方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rapid Closed Pore Regulation of Biomass‐derived Hard Carbons Based on Flash Joule Heating for Enhanced Sodium Ion Storage
Closed pores are essential for enhancing the low‐potential (<0.1 V) plateau capacity and initial Coulombic efficiency of hard carbon (HC) anode materials for energy‐dense sodium‐ion batteries. However, the lack of simple and effective closed‐pore construction strategies has severely hindered their future commercialization. Herein, a rapid closed‐pore regulation strategy for biomass‐derived HCs is proposed through pre‐heat treatment followed by flash Joule heating (FJH). The pre‐heat treatment is critical for transforming vulnerable biomass into high‐carbonizability frameworks that are resistant to over‐graphitization. FJH treatment helps to generate enriched closed pores surrounded by the resulting carbon walls with expanded interlayer spacing as accessible Na+ channels. This strategy shows remarkable universality and applicability for biomass feedstocks, enabling rapid conversion of various carbonization‐vulnerable precursors to high‐yield (e.g. HC600‐J‐1500 compared with HC25‐J‐1500, ≈14‐fold yield increase) and closed‐pore enriched HCs. The optimized sample demonstrates an outstanding reversible capacity of 377 mAh g−1 with a superior initial Coulombic efficiency of 93.3%, which stands in a record value prepared with FJH and is even competitive via conventional carbonization. Comprehensive tests reveal that the efficient Na storage originates from the pore‐filling mechanism in the closed nanopores. This work suggests a facile and universal closed‐pore regulation approach for the rational design of high‐performance HCs.
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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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