Highly thermo-responsive and reversible thermal protection over depolymerizable complex for potassium-ion battery

IF 21.1 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Zhenguo Qi , Yihui Liu , Youbin Zhang , Guohui Qin , Xiangming He
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引用次数: 0

Abstract

The poor interface compatibility and adverse safety concerns are enormous challenges for fabricating high temperature adaptative potassium ion batteries (PIBs) and beyond. To present, various protocols have been developed to enhance the thermal protection capacity, nevertheless, the one-time protection rather than the reversible protection or retarded thermal protection (above 120 °C) cause serious threaten for safety issues. Herein, (E)-4,4′-((diazene-1,2-diylbis(4,1-phenylene))bis(azanediyl))bis(4-oxobutanoic acid) (OBA) grafted BiSbS3 nanorods embedded into porous N-P co-doped carbon sheets (NPC), i.e. BiSbS3/NPC-OBA with an excellent interface compatibility was designed serving as the state-of-the-art thermorunaway annihibitor toward reversible thermal protection. Both theoretical calculations and experimental trials manifest that such annihibitor undertakes the process of isomerization-polymerization-depolymerization highly driven by trans-to-cis transition, smartly switching-off the ion extrusion/extraction when approaching the thermorunaway temperature and restoring its original properties when cooled to room temperature. The other ingenious merits including fine low-temperature adaptability and long lifespan were also approached in such highly safe energy storage system. The deepened investigations on interface property and reversible thermal protection shed a new perspective on depolymerizable electrode fabrication toward advanced safe energy storage.

Abstract Image

用于钾离子电池的可解聚复合物具有高度热响应性和可逆热保护功能
接口兼容性差和不利的安全问题是制造高温适应性钾离子电池(PIB)及其他电池所面临的巨大挑战。目前,已经开发出各种方案来提高热保护能力,但一次性保护而非可逆保护或延迟热保护(超过 120 °C)会对安全问题造成严重威胁。本文设计了(E)-4,4′-((重氮-1,2-二基双(4,1-亚苯))双(偶氮二基))双(4-氧代丁酸)(OBA)接枝 BiSbS3 纳米棒,将其嵌入多孔 N-P 共掺杂碳片(NPC)中,即具有良好界面相容性的 BiSbS3/NPC-OBA,作为最先进的热失控抑制剂,实现可逆热保护。理论计算和实验均表明,这种抑制剂在反式-顺式转变的高度驱动下进行异构化-聚合-解聚的过程,在接近热失控温度时智能地关闭离子挤出/萃取,并在冷却到室温时恢复其原有特性。这种高度安全的储能系统还具有其他巧妙的优点,包括良好的低温适应性和较长的使用寿命。对界面特性和可逆热保护的深入研究为可解聚电极的制造提供了一个新的视角,有助于实现先进的安全储能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Materials Today
Materials Today 工程技术-材料科学:综合
CiteScore
36.30
自引率
1.20%
发文量
237
审稿时长
23 days
期刊介绍: Materials Today is the leading journal in the Materials Today family, focusing on the latest and most impactful work in the materials science community. With a reputation for excellence in news and reviews, the journal has now expanded its coverage to include original research and aims to be at the forefront of the field. We welcome comprehensive articles, short communications, and review articles from established leaders in the rapidly evolving fields of materials science and related disciplines. We strive to provide authors with rigorous peer review, fast publication, and maximum exposure for their work. While we only accept the most significant manuscripts, our speedy evaluation process ensures that there are no unnecessary publication delays.
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