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On enhanced hydrogen adsorption on alkali (cesium) doped C-60 and effects of the quantum nature of the H-2 molecule on physisorption energies

机译:碱(铯)掺杂的C-60上增强的氢吸附以及H-2分子的量子性质对物理吸附能的影响

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Hydrogen storage by physisorption in carbon based materials is hindered by low adsorption energies. In the last decade doping of carbon materials with alkali, earth alkali or other metal atoms was proposed as a means to enhance adsorption energies, and some experiments have shown promising results. We investigate the upper bounds of hydrogen storage capacities of C60Cs clusters grown in ultracold helium nanodroplets by analyzing anomalies in the ion abundance that indicate shell closure of hydrogen adsorption shells. On bare C-60(+), a commensurate phase with 32H(2) molecules was identified in previous experiments. Doping C-60 with a single cesium atom leads to an increase in relative ion abundance for the first 10H(2) molecules, and the closure of the commensurate phase is shifted from 32 to 42H(2) molecules. Density functional theory calculations indicate that thirteen energetically enhanced adsorption sites exist, where six of them fill the groove between Cs and C-60 and 7 are located at the cesium atom. We emphasize the large effect of the quantum nature of the hydrogen molecule on the adsorption energies, i.e. the adsorption energies are decreased by around 50% for (H-2)C60Cs and up to 80% for (H-2)C-60 by harmonic zero-point corrections, which represent an upper bound to corrections for dissociation energies (D-e to D-0) by the vibrational ground states. Five normal modes of libration and vibration of H-2 physisorbed on the substrate contribute primarily to this large decrease in adsorption energies. A similar effect can be found for H-2 physisorbed on benzene and is expected to be found for any other weakly H-2-binding substrate. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:低吸附能阻碍了通过物理吸附在碳基材料中储氢。在最近的十年中,提出了用碱金属,碱土金属或其他金属原子掺杂碳材料的方法,以提高吸附能,并且一些实验已经显示出令人鼓舞的结果。我们通过分析表明氢吸附壳封闭的离子丰度异常,研究了在超冷氦纳米液滴中生长的C60Cs团簇的储氢能力上限。在裸露的C-60(+)上,在先前的实验中确定了与32H(2)分子相当的相。用单个铯原子掺杂C-60会导致前10H(2)分子的相对离子丰度增加,并且相称的闭合从32变为42H(2)分子。密度泛函理论计算表明,存在13个能量增强的吸附位,其中6个填充Cs和C-60之间的凹槽,而7个位于铯原子上。我们强调氢分子的量子性质对吸附能的巨大影响,即对于(H-2)C60Cs,吸附能降低约50%,而对(H-2)C-60s降低约80%。谐波零点校正,代表通过振动基态对解离能(De到D-0)进行校正的上限。物理吸附在基材上的H-2的五种正常释放和振动模式主要是造成吸附能大幅下降的原因。对于物理吸附在苯上的H-2可以发现类似的效果,并且预计对于任何其他弱H-2结合底物也可以找到类似的效果。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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