Xu Yaohui, Yang Xi, Li Yuting, Zhao Yu, Shu Xing, Zhang Guoying, Yang Tingna, Liu Yitao, Wu Pingkeng, Ding Zhao
Laboratory for Functional Materials, School of New Energy Materials and Chemistry, Leshan Normal University, Leshan 614000, China.
Leshan West Silicon Materials Photovoltaic New Energy Industry Technology Research Institute, Leshan 614000, China.
Nanomaterials (Basel). 2024 Oct 18;14(20):1671. doi: 10.3390/nano14201671.
Rare-earth-metal-based materials have emerged as frontrunners in the quest for high-performance hydrogen storage solutions, offering a paradigm shift in clean energy technologies. This comprehensive review delves into the cutting-edge advancements, challenges, and future prospects of these materials, providing a roadmap for their development and implementation. By elucidating the fundamental principles, synthesis methods, characterization techniques, and performance enhancement strategies, we unveil the immense potential of rare-earth metals in revolutionizing hydrogen storage. The unique electronic structure and hydrogen affinity of these elements enable diverse storage mechanisms, including chemisorption, physisorption, and hydride formation. Through rational design, nanostructuring, surface modification, and catalytic doping, the hydrogen storage capacity, kinetics, and thermodynamics of rare-earth-metal-based materials can be significantly enhanced. However, challenges such as cost, scalability, and long-term stability need to be addressed for their widespread adoption. This review not only presents a critical analysis of the state-of-the-art but also highlights the opportunities for multidisciplinary research and innovation. By harnessing the synergies between materials science, nanotechnology, and computational modeling, rare-earth-metal-based hydrogen storage materials are poised to accelerate the transition towards a sustainable hydrogen economy, ushering in a new era of clean energy solutions.
稀土基金属材料已成为寻求高性能储氢解决方案的领跑者,为清洁能源技术带来了范式转变。这篇全面的综述深入探讨了这些材料的前沿进展、挑战和未来前景,为其开发和应用提供了路线图。通过阐明基本原理、合成方法、表征技术和性能增强策略,我们揭示了稀土金属在革新储氢方面的巨大潜力。这些元素独特的电子结构和对氢的亲和力促成了多种存储机制,包括化学吸附、物理吸附和氢化物形成。通过合理设计、纳米结构化、表面改性和催化掺杂,稀土基金属材料的储氢容量、动力学和热力学性能可得到显著提高。然而,要广泛应用这些材料,还需要解决成本、可扩展性和长期稳定性等挑战。这篇综述不仅对当前的技术水平进行了批判性分析,还突出了多学科研究与创新的机会。通过利用材料科学、纳米技术和计算建模之间的协同作用,稀土基金属储氢材料有望加速向可持续氢经济的转型,迎来清洁能源解决方案的新时代。