金属氟化物在能量转换和储存中的研究进展

IF 19.5 1区 材料科学 Q1 CHEMISTRY, PHYSICAL
Carbon Energy Pub Date : 2024-11-28 DOI:10.1002/cey2.630
Runlin Zhang, Zijin Xu, Zeyu Hao, Zeshuo Meng, Xiufeng Hao, Hongwei Tian
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引用次数: 0

摘要

近年来,可再生能源的目标是取代迅速消耗的化石燃料,由于有限的能量储存和转换技术,面临着挑战。为了提高能量储存和转换效率,学术界对许多潜在材料进行了广泛的研究。在这些材料中,金属氟化物由于其化学成分中氟的电负性最高,其离子金属-氟键和可调谐的电子结构而引起了极大的关注。这使它们成为未来电化学在各个领域应用的有希望的候选者。然而,金属氟化物在不同的应用方向上遇到了各种各样的挑战。因此,我们全面综述了金属氟化物在储能和转换领域的应用,旨在加深我们对金属氟化物在不同电化学过程中所表现出的特性的了解。本文总结了在不同类型的电池应用中遇到的困难和改进方法,以及超级电容器领域中几种典型的电极优化策略。在水电解领域,我们关注表面重构和氟的关键作用,从重构机理和工艺分析的角度展示金属氟化物的催化性能。最后,对该领域进行了总结和展望,旨在为金属氟化物储能和转化应用的未来突破提供指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Research advances of metal fluoride for energy conversion and storage

Research advances of metal fluoride for energy conversion and storage

In recent years, renewable energy sources, which aim to replace rapidly depleting fossil fuels, face challenges due to limited energy storage and conversion technologies. To enhance energy storage and conversion efficiency, extensive research has been conducted in the academic community on numerous potential materials. Among these materials, metal fluorides have attracted significant attention due to their ionic metal–fluorine bonds and tunable electronic structures, attributed to the highest electronegativity of fluorine in their chemical composition. This makes them promising candidates for future electrochemical applications in various fields. However, metal fluorides encounter various challenges in different application directions. Therefore, we comprehensively review the applications of metal fluorides in the field of energy storage and conversion, aiming to deepen our understanding of their exhibited characteristics in different electrochemical processes. In this paper, we summarize the difficulties and improvement methods encountered in different types of battery applications and several typical electrode optimization strategies in the field of supercapacitors. In the field of water electrolysis, we focus on surface reconstruction and the critical role of fluorine, demonstrating the catalytic performance of metal fluorides from the perspectives of reconstruction mechanism and process analysis. Finally, we provide a summary and outlook for this field, aiming to offer guidance for future breakthroughs in the energy storage and conversion applications of metal fluorides.

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来源期刊
Carbon Energy
Carbon Energy Multiple-
CiteScore
25.70
自引率
10.70%
发文量
116
审稿时长
4 weeks
期刊介绍: Carbon Energy is an international journal that focuses on cutting-edge energy technology involving carbon utilization and carbon emission control. It provides a platform for researchers to communicate their findings and critical opinions and aims to bring together the communities of advanced material and energy. The journal covers a broad range of energy technologies, including energy storage, photocatalysis, electrocatalysis, photoelectrocatalysis, and thermocatalysis. It covers all forms of energy, from conventional electric and thermal energy to those that catalyze chemical and biological transformations. Additionally, Carbon Energy promotes new technologies for controlling carbon emissions and the green production of carbon materials. The journal welcomes innovative interdisciplinary research with wide impact. It is indexed in various databases, including Advanced Technologies & Aerospace Collection/Database, Biological Science Collection/Database, CAS, DOAJ, Environmental Science Collection/Database, Web of Science and Technology Collection.
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