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Direct evidence for solid-like hydrogen in a nanoporous carbon hydrogen storage material at supercritical temperatures

机译:在超临界温度下纳米多孔碳储氢材料中固体状氢的直接证据

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摘要

Here we report direct physical evidence that confinement of molecular hydrogen (H-2) in an optimized nanoporous carbon results in accumulation of hydrogen with characteristics commensurate with solid H2 at temperatures up to 67 K above the liquid vapor critical temperature of bulk H2. This extreme densification is attributed to confinement of 112 molecules in the optimally sized micropores, and occurs at pressures as low as 0.02 MPa. The quantities of contained, solid-like H2 increased with pressure and were directly evaluated using in situ inelastic neutron scattering and confirmed by analysis of gas sorption isotherms. The demonstration of the existence of solid-like H2 challenges the existing assumption that supercritical hydrogen confined in nanopores has an upper limit of liquid H2 density. Thus, this insight offers opportunities for the development of more accurate models for the evaluation and design of nanoporous materials for high capacity adsorptive hydrogen storage.
机译:在这里,我们报告了直接的物理证据,即在优化的纳米多孔碳中限制分子氢(H-2)会导致氢的积累,其特征与固体H2相称,且温度要比本体H2的液体蒸气临界温度高67K。这种极端的致密化归因于将112个分子限制在最佳尺寸的微孔中,并且发生在低至0.02 MPa的压力下。固体H2的含量随压力增加而增加,并使用原位非弹性中子散射直接评估,并通过分析气体吸附等温线确定。固态氢的存在的证明挑战了以下现有假设:被限制在纳米孔中的超临界氢具有液态氢密度的上限。因此,这种见识为开发用于评估和设计用于高容量吸附氢存储的纳米多孔材料的更准确模型提供了机会。

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