设计石墨烯基催化剂实现水电解绿色制氢的主要策略

IF 7 3区 材料科学 Q1 ENERGY & FUELS Journal of Physics-Energy Pub Date : 2023-03-22 DOI:10.1088/2515-7655/acc68d
Huidi Yu, Xu Jin, Yiheng Li, Lin Zhang, Meng Yang, Jianming Li
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引用次数: 0

摘要

水电解作为下一代清洁燃料,在大规模生产绿色氢气方面引起了人们的极大关注。近年来,石墨烯(GDY)这一碳同素异形体的新成员的开发,为在水电解槽中获得廉价高效的催化剂提供了新的替代方案。GDY结构中独特的原子排列导致了sp–和sp2–C的共存,相应地带来了许多有趣的特征,如异质电子分布、宽的可定制自然带隙、快速的电子/质量传输和丰富的化学键。GDY的这些独特的内在性质为科学家设计阴极析氢反应、阳极析氧反应和整体水分解的新概念电催化剂提供了光辉的灵感。在取得巨大进展的基础上,系统总结了目前GDY基催化剂的主要设计策略,包括界面工程、单个原子固定、诱导约束生长和自下而上的制造。通过大量实现高效水电解的实施实例,我们特别着重阐明了GDY在这些设计策略中的决定性作用,并提供了全面的理论和实验证据。展望了在氢能领域开发GDY基电催化剂的未来方向,迫切需要深入了解结构性能关系和催化机理,尤其是在实际工业水电解槽中。
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Principal strategies for designing graphdiyne-based catalyst toward green hydrogen production from water electrolysis
Water electrolysis has attracted significant attention for large-scale production of green hydrogen as next-generation clean fuels. Recently, the development of graphdiyne (GDY), a new member of carbon allotropes, has been promisingly offering novel alternatives for acquisition of inexpensive and efficient catalysts in the water electrolyzer. The unique atomic arrangement in GDY architecture leads to coexistence of sp– and sp2–C, correspondingly brings numerous intriguing features such as heterogeneous electron distribution, wide tailorable natural bandgap, rapid electron/mass transport and rich chemical bonds. These unique intrinsic natures of GDY provide brilliant inspirations for scientists to design new-concept electrocatalyst toward cathodic hydrogen evolution reaction, anodic oxygen evolution reaction and the overall water-splitting. Based on the immense progress, in this short perspective, current principal design strategies of GDY-based catalysts are systematically summarized, including interface engineering, individual atom fixation, induced constrained growth and bottom-up fabrication. With abundant implementation examples for achieving highly efficient water electrolysis, in particular we focus on clarifying the decisive role of GDY on these design strategies with comprehensive theoretical and experimental evidences. The future direction in developing GDY-based electrocatalysts in hydrogen energy field is also depicted with the urgent anticipation of deeper understanding of structure-performance relationship and catalytic mechanism, especially those in real industry water electrolyzers.
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来源期刊
CiteScore
10.90
自引率
1.40%
发文量
58
期刊介绍: The Journal of Physics-Energy is an interdisciplinary and fully open-access publication dedicated to setting the agenda for the identification and dissemination of the most exciting and significant advancements in all realms of energy-related research. Committed to the principles of open science, JPhys Energy is designed to maximize the exchange of knowledge between both established and emerging communities, thereby fostering a collaborative and inclusive environment for the advancement of energy research.
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