纳米孔
材料科学
氢气储存
吸附
化学工程
氢
动力学
多孔性
纳米颗粒
纳米技术
合金
化学
有机化学
吸附
复合材料
工程类
物理
量子力学
作者
Hye‐Sun Kim,HyeonJi Kim,Wonsik Kim,Choah Kwon,Shengda Jin,Taejun Ha,Jae Hyeok Shim,Soohyung Park,Aqil Jamal,Sangtae Kim,Eun Seon Cho
标识
DOI:10.1038/s41467-024-55018-y
摘要
Nanoporous metals have unique potentials for energy applications with a high surface area despite the percolating structure. Yet, a highly corrosive environment is required for the synthesis of porous metals with conventional dealloying methods, limiting the large-scale fabrication of porous structures for reactive metals. In this study, we synthesize a highly reactive Mg nanoporous system through a facile organic solution-based approach without any harsh etching. The synthesized nanoporous Mg also demonstrates enhanced hydrogen sorption kinetics and reveals unique kinetic features compared to Mg nanoparticles. The well-crystallized Mg nanoporous structure exhibits crystalline facet-dependent hydrogen sorption characteristics, featuring gradually improved hydrogen storage capacity up to 6 wt.% upon cycling. Also, continuum kinetics models coupled to atomistic simulations reveal that the compressive stress developed during the hydrogenation of nanoporous Mg enhances the sorption kinetics, as opposed to the sluggish kinetics under tensile stress in core-shell nanoparticles. It is expected that the synthetic strategy conceived in this study can be further implemented to prepare different kinds of reactive porous metals in a facile and scalable way for the development of large-scale and distributed hydrogen storage systems for the emerging low-carbon hydrogen economy.
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