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利用氮掺杂碳材料的曲率进行储氢

Leveraging Curvature on N-Doped Carbon Materials for Hydrogen Storage.

作者信息

Rice Peter S, Lee Gabriel, Schwartz Brayden, Autrey Tom, Ginovska Bojana

机构信息

Physical and Computational Sciences Directorate, Pacific Northwest National Laboratory, 902 Battelle Boulevard, Richland, WA, 99352, USA.

出版信息

Small. 2024 Jun;20(25):e2310162. doi: 10.1002/smll.202310162. Epub 2024 Jan 14.

Abstract

Carbon sorbent materials have shown great promise for solid-state hydrogen (H) storage. Modification of these materials with nitrogen (N) dopants has been undertaken to develop materials that can store H at ambient temperatures. In this work density functional theory (DFT) calculations are used to systematically probe the influence of curvature on the stability and activity of undoped and N-doped carbon materials toward H binding. Specifically, four models of carbon materials are used: graphene, [5,5] carbon nanotube, [5,5] D-C and C, to extract and correlate the thermodynamic properties of active sites with varying degrees of sp hybridization (curvature). From the calculations and analysis, it is found that graphitic N-doping is thermodynamically favored on more pyramidal sites with increased curvature. In contrast, it is found that the hydrogen binding energy is weakly affected by curvature and is dominated by electronic effects induced by N-doping. These findings highlight the importance of modulating the heteroatom doping configuration and the lattice topology when developing materials for H storage.

摘要

碳吸附剂材料在固态氢(H)存储方面展现出了巨大潜力。人们已对这些材料进行氮(N)掺杂改性,以开发能够在环境温度下存储氢的材料。在这项工作中,采用密度泛函理论(DFT)计算来系统地探究曲率对未掺杂和N掺杂碳材料与氢结合的稳定性和活性的影响。具体而言,使用了四种碳材料模型:石墨烯、[5,5]碳纳米管、[5,5] D - C和C,以提取并关联具有不同程度sp杂化(曲率)的活性位点的热力学性质。通过计算和分析发现,石墨型N掺杂在曲率增加的更多金字塔形位点上在热力学上更有利。相比之下,发现氢结合能受曲率的影响较弱,且主要由N掺杂引起的电子效应主导。这些发现突出了在开发储氢材料时调节杂原子掺杂构型和晶格拓扑结构的重要性。

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