磁性纳米材料在促进水裂解制氢中的应用:潜力、挑战和前景综述

IF 2 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Wubshet Getachew Mengesha, Adem Ali Muhabie
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引用次数: 0

摘要

纳米材料已经成为先进技术的关键组成部分,特别是在能源生产和储存方面。本文探讨了它们的独特性质,特别关注了通过水裂解产生氢的磁性纳米材料。随着全球对清洁和可持续能源需求的增加,氢因其零排放和高能量密度而被确定为一种有前途的能源载体。磁场与纳米材料的集成增强了电解过程中的反应动力学和质量传递,从而显著提高了效率。本研究综述了利用磁性纳米材料(如铁氧体)优化水电解催化活性的策略。研究了磁场影响反应动力学的机制,包括增强电荷转移和减少电子-空穴复合。还讨论了磁性材料在操作条件下的稳定性和生产方法的可扩展性等挑战。这些发现强调了磁性纳米材料在加速向氢经济过渡方面的变革潜力,为未来可再生能源技术的研究提供了重要的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Magnetic nanomaterial in enhancing water splitting for hydrogen generation: potentials, challenges and perspectives: a critical review

Nanomaterials have emerged as pivotal components in advancing technologies, particularly in energy production and storage. This paper explores their unique properties, with a specific focus on magnetic nanomaterials for hydrogen generation through water splitting. As the global demand for clean and sustainable energy intensifies, hydrogen has been identified as a promising energy carrier due to its zero-emission profile and high energy density. The integration of magnetic fields with nanomaterials enhances reaction kinetics and mass transport during electrolysis, thereby significantly improving efficiency. This study reviews strategies for harnessing magnetic nanomaterials, such as ferrites, to optimize catalytic activity in water electrolysis. The mechanisms through which magnetic fields influence reaction dynamics, including enhanced charge transfer and reduced electron–hole recombination, are examined. Challenges, such as the stability of magnetic materials under operational conditions and the scalability of production methods, are also discussed. The findings underscore the transformative potential of magnetic nanomaterials in accelerating the transition to a hydrogen economy, offering critical insights for future research in renewable energy technologies.

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来源期刊
CiteScore
8.60
自引率
0.00%
发文量
1
审稿时长
13 weeks
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