用自支撑层状双羟基电催化剂推动清洁能源的未来:迈向可持续发展的一步

IF 22.7 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Infomat Pub Date : 2024-11-05 DOI:10.1002/inf2.12639
Man-Kei Wong, Jian Yiing Loh, Feng Ming Yap, Wee-Jun Ong
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引用次数: 0

摘要

在向可再生燃料的持续过渡中,自支撑层状双氢氧化物(LDHs)被设想为振兴电催化领域的有利电催化剂,从而促进环境修复和加强可持续的全球能源安全。LDHs具有独特的层状结构、丰富的活性位点、可调的嵌入间距和组成灵活性等特点,在各种能源相关应用中具有卓越的活性、选择性和稳定性。通过解决挖掘其复兴的技术和时间突出性,本综述首先涵盖了最简单的最先进的合成方法以及有趣的修改策略,以破译真实的结构-性能相关性,以推进更强大和精确的催化剂设计。除此之外,异质结构工程采用多种偶联材料,以构建具有前所未有的活性和稳定性的无粘结剂的ldhs异质结构。随后,这一前沿领域在HER、OER、UOR、AOR、海水分裂等多种基本转化反应等电催化应用中的实验研究和理论建模取得了里程碑式的成果。作为最后的说明,本文提出了一个简短的结论,概述了未来的前景。从本质上讲,这篇综述希望为创新和弹性的下一代催化剂的未来发展提供启示和激发明智的灵感。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Fueling the future of clean energy with self-supported layered double hydroxides-based electrocatalysts: A step toward sustainability

Fueling the future of clean energy with self-supported layered double hydroxides-based electrocatalysts: A step toward sustainability

Amid the ongoing transition toward renewable fuels, the self-supported layered double hydroxides (LDHs) are envisioned as propitious electrocatalysts for reinvigorating the electrocatalysis realm, thereby facilitating environmental remediation and bolstering sustainable global energy security. Exploiting appealing attributes such as unique lamellar structure, abundant active sites, tunable intercalation spacing and compositional flexibility, LDHs boast remarkable activity, selectivity and stability across diverse energy-related applications. By virtue of addressing the technological and time prominence of excavating their renaissance, this review first encompasses the facile state-of-the-art synthetic approaches alongside intriguing modification strategies, toward deciphering the authentic structure–performance correlations for advancing more robust and precise catalyst design. Aside from this, heterostructure engineering employing diversified ranges of coupling materials is highlighted, to construct ground-breaking binder-free LDHs-based heterostructures endowing with unprecedented activity and stability. Subsequently, the milestone gained from experimental research and theoretical modeling of this frontier in multifarious electrocatalytic applications, including HER, OER, UOR, AOR, seawater splitting and other fundamental conversion reactions is rigorously unveiled. As a final note, a brief conclusion is presented with an outline of future prospects. Essentially, this review aspires to offer enlightenment and incite wise inspiration for the future evolution of innovative and resilient next-generation catalysts.

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来源期刊
Infomat
Infomat MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
37.70
自引率
3.10%
发文量
111
审稿时长
8 weeks
期刊介绍: InfoMat, an interdisciplinary and open-access journal, caters to the growing scientific interest in novel materials with unique electrical, optical, and magnetic properties, focusing on their applications in the rapid advancement of information technology. The journal serves as a high-quality platform for researchers across diverse scientific areas to share their findings, critical opinions, and foster collaboration between the materials science and information technology communities.
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