Shaker Lina M, Al-Amiery Ahmed A, Al-Azzawi Waleed K
Department of Chemical and Process Engineering, Faculty of Engineering and Built Environment, University Kebangsaan Malaysia (UKM), P.O. Box 43000, Bangi, Selangor, Malaysia.
Al-Farahidi University, Baghdad, 10001, Iraq.
Discov Nano. 2024 Jan 3;19(1):3. doi: 10.1186/s11671-023-03949-8.
This comprehensive review explores the transformative role of nanomaterials in advancing the frontier of hydrogen energy, specifically in the realms of storage, production, and transport. Focusing on key nanomaterials like metallic nanoparticles, metal-organic frameworks, carbon nanotubes, and graphene, the article delves into their unique properties. It scrutinizes the application of nanomaterials in hydrogen storage, elucidating both challenges and advantages. The review meticulously evaluates diverse strategies employed to overcome limitations in traditional storage methods and highlights recent breakthroughs in nanomaterial-centric hydrogen storage. Additionally, the article investigates the utilization of nanomaterials to enhance hydrogen production, emphasizing their role as efficient nanocatalysts in boosting hydrogen fuel cell efficiency. It provides a comprehensive overview of various nanocatalysts and their potential applications in fuel cells. The exploration extends to the realm of hydrogen transport and delivery, specifically in storage tanks and pipelines, offering insights into the nanomaterials investigated for this purpose and recent advancements in the field. In conclusion, the review underscores the immense potential of nanomaterials in propelling the hydrogen energy frontier. It emphasizes the imperative for continued research aimed at optimizing the properties and performance of existing nanomaterials while advocating for the development of novel nanomaterials with superior attributes for hydrogen storage, production, and transport. This article serves as a roadmap, shedding light on the pivotal role nanomaterials can play in advancing the development of clean and sustainable hydrogen energy technologies.
这篇综述探讨了纳米材料在推动氢能前沿领域发展方面的变革性作用,特别是在储存、生产和运输领域。文章聚焦于金属纳米颗粒、金属有机框架、碳纳米管和石墨烯等关键纳米材料,深入研究了它们的独特性质。它仔细审视了纳米材料在储氢方面的应用,阐明了其中的挑战和优势。该综述精心评估了为克服传统储存方法的局限性而采用的各种策略,并突出了以纳米材料为中心的储氢方面的最新突破。此外,文章还研究了纳米材料在提高制氢效率方面的应用,强调了它们作为高效纳米催化剂在提高氢燃料电池效率方面的作用。它全面概述了各种纳米催化剂及其在燃料电池中的潜在应用。探索延伸到氢运输和输送领域,特别是在储存罐和管道方面,介绍了为此目的所研究的纳米材料以及该领域的最新进展。总之,该综述强调了纳米材料在推动氢能前沿发展方面的巨大潜力。它强调了持续研究的必要性,旨在优化现有纳米材料的性能,同时倡导开发具有卓越储氢、制氢和运输性能的新型纳米材料。本文充当了一份路线图,阐明了纳米材料在推进清洁和可持续氢能技术发展中可以发挥的关键作用。