二维材料在AEM水分解应用中的关键工程策略

IF 23.5 1区 化学 Q1 CHEMISTRY, INORGANIC & NUCLEAR
Abhisek Majumdar , Hoang Tuan Nguyen , Naresh Raut , Keshav Raj Chapagain , Nam Hoon Kim , Duy Thanh Tran , Joong Hee Lee
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引用次数: 0

摘要

在减少碳排放和减缓气候变化的同时,迫切需要可持续的氢气生产来满足日益增长的全球能源需求。这种需求推动了对水电解技术的广泛研究,阴离子交换膜水电解(AEMWE)作为一种有前途的替代方案,因为它可以使用成本效益高、土壤丰富的催化剂在碱性条件下运行。在各种电催化剂材料中,二维(2D)材料因其可调谐的电子结构、较大的表面积、丰富的活性位点和增强的质量传输能力而备受关注。本文综述了用于AEMWE的二维材料及其杂化材料的结构和电子工程方面的最新进展,重点介绍了形貌控制、杂原子掺杂、合金化、异质结构形成和缺陷工程等关键策略。这些方法提高了催化活性、稳定性和选择性,从而克服了未改性二维材料的主要局限性。尽管取得了显著进展,但在提高长期耐久性、了解降解机制以及扩大未开发的2D材料(如MXenes、MBenes和黑磷)的范围方面仍然存在挑战。将计算模型与实验研究相结合的未来研究对于优化工业规模应用的催化剂设计至关重要。通过解决这些挑战,工程2D材料在推进AEMWE技术方面具有巨大潜力,并促进可扩展、经济高效和可持续的氢气生产。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recent key engineering strategies of 2D materials in AEM water splitting applications
Sustainable hydrogen production is urgently needed to address the growing global energy demand while reducing carbon emissions and mitigating climate change. This need has driven extensive research into water electrolysis technologies, with anion exchange membrane water electrolysis (AEMWE) emerging as a promising alternative, as it can use cost-effective, earth-abundant catalysts to operate in alkaline conditions. Among various electrocatalyst materials, two-dimensional (2D) materials have attracted significant attention due to their tunable electronic structures, large surface areas, abundant active sites and enhanced mass transport capabilities. This review highlights the recent advances in the structural and electronic engineering of 2D materials and their hybrids for AEMWE applications, focusing on key strategies of morphology control, heteroatom doping, alloying, heterostructure formation, and defect engineering. These approaches have improved catalytic activity, stability, and selectivity, thus overcoming major limitations of unmodified 2D materials. Despite notable progress, challenges remain related to enhancing long-term durability, understanding degradation mechanisms, and expanding the scope of underexplored 2D materials, like MXenes, MBenes, and black phosphorus. Future research integrating computational modeling with experimental studies will be critical to optimize catalyst design for industrial-scale applications. Through addressing these challenges, engineered 2D materials hold great potential to advance AEMWE technology, and facilitate scalable, cost-effective, and sustainable hydrogen production.
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来源期刊
Coordination Chemistry Reviews
Coordination Chemistry Reviews 化学-无机化学与核化学
CiteScore
34.30
自引率
5.30%
发文量
457
审稿时长
54 days
期刊介绍: Coordination Chemistry Reviews offers rapid publication of review articles on current and significant topics in coordination chemistry, encompassing organometallic, supramolecular, theoretical, and bioinorganic chemistry. It also covers catalysis, materials chemistry, and metal-organic frameworks from a coordination chemistry perspective. Reviews summarize recent developments or discuss specific techniques, welcoming contributions from both established and emerging researchers. The journal releases special issues on timely subjects, including those featuring contributions from specific regions or conferences. Occasional full-length book articles are also featured. Additionally, special volumes cover annual reviews of main group chemistry, transition metal group chemistry, and organometallic chemistry. These comprehensive reviews are vital resources for those engaged in coordination chemistry, further establishing Coordination Chemistry Reviews as a hub for insightful surveys in inorganic and physical inorganic chemistry.
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