MXenes公司
氢气储存
氢
氢化物
持续性
储能
材料科学
纳米技术
能量载体
氢燃料车
氢燃料
工艺工程
化学
工程类
热力学
物理
有机化学
生态学
功率(物理)
生物
作者
Ata Ur Rehman,Safyan Akram Khan,Muhammad Mansha,Shahid Iqbal,Majad Khan,Syed Mustansar Abbas,Shahid Ali
标识
DOI:10.1002/asia.202400308
摘要
Abstract Hydrogen‐driven energy is fascinating among the everlasting energy sources, particularly for stationary and onboard transportation applications. Efficient hydrogen storage presents a key challenge to accomplishing the sustainability goals of hydrogen economy. In this regard, solid‐state hydrogen storage in nanomaterials, either physically or chemically adsorbed, has been considered a safe path to establishing sustainability goals. Though metal hydrides have been extensively explored, they fail to comply with the set targets for practical utilization. Recently, MXenes, both in bare form and hybrid state with metal hydrides, have proven their flair in ascertaining the hydrides′ theoretical and experimental hydrogen storage capabilities far beyond the fancy materials and current state‐of‐the‐art technologies. This review encompasses the significant accomplishments achieved by MXenes (primarily in 2019–2024) for enhancing the hydrogen storage performance of various metal hydride materials such as MgH 2 , AlH 3 , Mg(BH 4 ) 2 , LiBH 4 , alanates, and composite hydrides. It also discusses the bottlenecks of metal hydrides for hydrogen storage, the potential use of MXenes hybrids, and their challenges, such as reversibility, H 2 losses, slow kinetics, and thermodynamic barriers. Finally, it concludes with a detailed roadmap and recommendations for mechanistic‐driven future studies propelling toward a breakthrough in solid material‐driven hydrogen storage using cost‐effective, efficient, and long‐lasting solutions.
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