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Theoretical modelling of porous silicon decorated with metal atoms for hydrogen storage

机译:用金属原子装饰多孔硅的理论建模储氢储氢

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There is experimental evidence suggesting that metal adatoms enhance the physisorption of hydrogen molecules in porous silicon. However, theoretical reports about the physical properties for this material to be suitable for hydrogen storage are scarce. Thus, in this work we employ Density Functional Theory to study the effects of decoration with metals on the hydrogen-adsorption properties on hydrogen-passivated porous silicon. The results indicate that lithium and palladium decorating atoms are strongly bonded to the porous silicon-preventing the adverse effects of clusterization-while beryllium is not. Lithium and palladium exhibit physisorption capacity up to 5 and 4 hydrogen molecules per adatom, respectively. In contrast, adsorption of hydrogen molecules in beryllium is too weak as the adatom is not chemisorbed on the surface of the pore. The hydrogen passivation of the pore surface proves to be beneficial for a strong chemisorption of the decorating atoms. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:有实验证据表明金属吸附剂增强了多孔硅中氢分子的理由。然而,关于该材料的物理性质的理论报告适合于储氢的物理性质是稀缺的。因此,在这项工作中,我们采用密度泛函理论,以研究装饰与金属对氢气钝化多孔硅的氢吸附性能的影响。结果表明,锂和钯装饰原子与多孔硅粘合地粘合,防止聚合物化的不良反应 - 而铍不存在。锂和钯分别表现出高达5至4个氢分子的物理吸引力。相反,铍中氢分子的吸附太弱,因为吸附在孔的表面上没有化学吸附。孔表面的氢钝化证明是有利于装饰原子的强大化学吸附。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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