Revealing the critical pore size for hydrogen storage via simultaneous enclathration and physisorption in activated carbon†

IF 9.5 2区 材料科学 Q1 CHEMISTRY, PHYSICAL
Erling Velten Rothmund, Jianying He, Zhiliang Zhang and Senbo Xiao
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Abstract

Hydrogen hydrate is regarded as an ideal hydrogen storage medium, but it faces unsolved challenges related to its extreme formation and stabilization conditions. Recent experiments have demonstrated that utilizing porous host materials can ease hydrate formation conditions and enhance stability. However, there is an urgent need to examine the nanoscopic interactions between hydrogen hydrates and solid porous materials to understand and optimize the mechanisms of hydrogen storage in the combined system. Here, the effect of pore size on hydrogen storage in hydrates confined in porous activated carbon is explored through molecular dynamics simulations, with initial validation by ab initio calculations. The results revealed a critical pore size of ∼2 nm, below which hydrogen hydrate decomposes. This critical size is primarily influenced by temperature and oxygen surface groups, while being largely unaffected by other properties of the activated carbon host. Furthermore, pockets of physisorbed H2 gas were found to occupy the smallest pores (around 1 nm). The results revealed a previously unreported dual-storage mechanism for H2 gas in hierarchical porous structures, where H2 can simultaneously be stored in micropores through physisorption and larger meso- and macro-pores through enclathration. Given further research and experimental verification, the hybrid mechanism could enable hydrogen storage capacities in hydrate-filled porous media to match or exceed that of pure hydrogen hydrate, while simultaneously offering milder formation and stability conditions.

Abstract Image

通过活性炭中同时存在的附着力和物理吸附力揭示储氢的临界孔径
水合氢被认为是一种理想的储氢介质,但它在极端的形成和稳定条件下面临着尚未解决的挑战。最近的实验表明,利用多孔宿主材料可以缓解水合物的形成条件并提高稳定性。然而,目前迫切需要研究氢水合物与固体多孔材料之间的纳米相互作用,以了解和优化组合系统中的储氢机制。在此,我们通过分子动力学模拟探讨了孔径对封闭在多孔活性炭中的水合物储氢的影响,并通过 abinitio 计算进行了初步验证。结果表明,临界孔径为 ∼ 2 nm,低于此孔径,水合氢会分解。这一临界尺寸主要受温度和氧表面基团的影响,而基本不受活性炭主质其他特性的影响。此外,还发现物理吸附的 H2 气体占据了最小的孔隙(约 1 nm)。研究结果揭示了此前未报道过的分层多孔结构中 H2 气体的双重存储机制,即 H2 可同时通过物理吸附存储在微孔中,以及通过附着存储在较大的中孔和大孔中。通过进一步的研究和实验验证,混合机制可使水合物填充多孔介质的储氢能力达到或超过纯水合物的储氢能力,同时提供更温和的形成和稳定条件。
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来源期刊
Journal of Materials Chemistry A
Journal of Materials Chemistry A CHEMISTRY, PHYSICAL-ENERGY & FUELS
CiteScore
19.50
自引率
5.00%
发文量
1892
审稿时长
1.5 months
期刊介绍: The Journal of Materials Chemistry A, B & C covers a wide range of high-quality studies in the field of materials chemistry, with each section focusing on specific applications of the materials studied. Journal of Materials Chemistry A emphasizes applications in energy and sustainability, including topics such as artificial photosynthesis, batteries, and fuel cells. Journal of Materials Chemistry B focuses on applications in biology and medicine, while Journal of Materials Chemistry C covers applications in optical, magnetic, and electronic devices. Example topic areas within the scope of Journal of Materials Chemistry A include catalysis, green/sustainable materials, sensors, and water treatment, among others.
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