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通过纳米限域笼形水合物构建用于储氢应用的可调介孔二氧化硅材料。

Tuneable mesoporous silica material for hydrogen storage application via nano-confined clathrate hydrate construction.

作者信息

Ciocarlan Radu-George, Farrando-Perez Judit, Arenas-Esteban Daniel, Houlleberghs Maarten, Daemen Luke L, Cheng Yongqiang, Ramirez-Cuesta Anibal J, Breynaert Eric, Martens Johan, Bals Sara, Silvestre-Albero Joaquin, Cool Pegie

机构信息

Department of Chemistry, University of Antwerp, Universiteitsplein 1, Wilrijk, Belgium.

The Advanced Materials Laboratory (LMA) - Department of Inorganic Chemistry - IUMA, University of Alicante (UA), Alicante, Spain.

出版信息

Nat Commun. 2024 Oct 8;15(1):8697. doi: 10.1038/s41467-024-52893-3.

Abstract

Safe storage and utilisation of hydrogen is an ongoing area of research, showing potential to enable hydrogen becoming an effective fuel, substituting current carbon-based sources. Hydrogen storage is associated with a high energy cost due to its low density and boiling point, which drives a high price. Clathrates (gas hydrates) are water-based (ice-like) structures incorporating small non-polar compounds such as H in cages formed by hydrogen bonded water molecules. Since only water is required to construct the cages, clathrates have been identified as a potential solution for safe storage of hydrogen. In bulk, pure hydrogen clathrate (HO-H) only forms in harsh conditions, but confined in nanospaces the properties of water are altered and hydrogen storage at mild pressure and temperature could become possible. Here, specifically a hydrophobic mesoporous silica is proposed as a host material, providing a suitable nano-confinement for ice-like clathrate hydrate. The hybrid silica material shows an important decrease of the pressure required for clathrate formation (approx. 20%) compared to the pure HO-H system. In-situ inelastic neutron scattering (INS) and neutron diffraction (ND) provided unique insights into the interaction of hydrogen with the complex surface of the hybrid material and demonstrated the stability of nano-confined hydrogen clathrate hydrate.

摘要

氢气的安全储存和利用是一个正在进行研究的领域,显示出使氢气成为一种有效燃料、替代当前碳基能源的潜力。由于氢气密度低和沸点低,其储存伴随着高昂的能源成本,这导致其价格高昂。笼形水合物(气体水合物)是一种水基(冰状)结构,在由氢键连接的水分子形成的笼中包含小的非极性化合物,如氢气。由于构建笼子仅需要水,笼形水合物已被确定为氢气安全储存的一种潜在解决方案。总体而言,纯氢气笼形水合物(H₂O-H₂)仅在苛刻条件下形成,但在纳米空间中,水的性质会发生改变,在温和的压力和温度下储存氢气可能成为现实。在此,特别提出一种疏水中孔二氧化硅作为主体材料,为冰状笼形水合物提供合适的纳米限域环境。与纯H₂O-H₂体系相比,这种杂化二氧化硅材料显示出笼形水合物形成所需压力显著降低(约20%)。原位非弹性中子散射(INS)和中子衍射(ND)为氢气与杂化材料复杂表面的相互作用提供了独特见解,并证明了纳米限域氢气笼形水合物的稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/de58/11461665/364d5875a2d5/41467_2024_52893_Fig1_HTML.jpg

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