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氮掺杂石墨材料中氦吸附的可能性

On the Possibility of Helium Adsorption in Nitrogen Doped Graphitic Materials.

作者信息

Sahoo Sudhir K, Heske Julian, Azadi Sam, Zhang Zhenzhe, Tarakina Nadezda V, Oschatz Martin, Khaliullin Rustam Z, Antonietti Markus, Kühne Thomas D

机构信息

Dynamics of Condensed Matter and Center for Sustainable Systems Design, Chair of Theoretical Chemistry, University of Paderborn, Warburger Str. 100, D-33098, Paderborn, Germany.

Department of Colloid Chemistry, Max Planck Institute of Colloids and Interfaces, Am Mühlenberg 1, D-14476, Potsdam, Germany.

出版信息

Sci Rep. 2020 Apr 2;10(1):5832. doi: 10.1038/s41598-020-62638-z.

Abstract

The potassium salt of polyheptazine imide (K-PHI) is a promising photocatalyst for various chemical reactions. From powder X-ray diffraction data an idealized structural model of K-PHI has been derived. Using atomic coordinates of this model we defined an energetically optimized K-PHI structure, in which the K ions are present in the pore and between the PHI-planes. The distance between the anion framework and K resembles a frustrated Lewis pair-like structure, which we denote as frustrated Coulomb pair that results in an interesting adsorption environment for otherwise non-adsorbing, non-polar gas molecules. We demonstrate that even helium (He) gas molecules, which are known to have the lowest boiling point and the lowest intermolecular interactions, can be adsorbed in this polarized environment with an adsorption energy of  - 4.6 kJ mol per He atom. The interaction between He atoms and K-PHI is partially originating from charge transfer, as disclosed by our energy decomposition analysis based on absolutely localized molecular orbitals. Due to very small charge transfer interactions, He gas adsorption saturates at 8 at%, which however can be subject to further improvement by cation variation.

摘要

聚七嗪酰亚胺钾盐(K-PHI)是一种用于各种化学反应的有前景的光催化剂。根据粉末X射线衍射数据推导得出了K-PHI的理想化结构模型。利用该模型的原子坐标,我们定义了一个能量优化的K-PHI结构,其中K离子存在于孔中以及PHI平面之间。阴离子骨架与K之间的距离类似于一种受挫的路易斯对结构,我们将其称为受挫库仑对,这为原本不吸附的非极性气体分子创造了一个有趣的吸附环境。我们证明,即使是已知沸点最低且分子间相互作用最弱的氦(He)气分子,也能在这种极化环境中被吸附,每个He原子的吸附能为-4.6 kJ/mol。正如我们基于绝对定域分子轨道的能量分解分析所揭示的,He原子与K-PHI之间的相互作用部分源于电荷转移。由于电荷转移相互作用非常小,He气吸附在8 at%时达到饱和,不过通过阳离子变化可能会进一步改善。

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