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氮取代碳材料对氢原子的吸附及其电化学性质的研究

Insights into hydrogen atom adsorption on and the electrochemical properties of nitrogen-substituted carbon materials.

作者信息

Zhu Z H, Hatori H, Wang S B, Lu G Q

机构信息

ARC Centre for Functional Nanomaterials, University of Queensland, Brisbane, 4072, Australia.

出版信息

J Phys Chem B. 2005 Sep 8;109(35):16744-9. doi: 10.1021/jp051787o.

Abstract

The nitrogen substitution in carbon materials is investigated theoretically using the density functional theory method. Our calculations show that nitrogen substitution decreases the hydrogen adsorption energy if hydrogen atoms are adsorbed on both nitrogen atoms and the neighboring carbon atoms. On the contrary, the hydrogen adsorption energy can be increased if hydrogen atoms are adsorbed only on the neighboring carbon atoms. The reason can be explained by the electronic structures analysis of N-substituted graphene sheets. Nitrogen substitution reduces the pi electron conjugation and increases the HOMO energy of a graphene sheet, and the nitrogen atom is not stable due to its 3-valent character. This raises an interesting research topic on the optimization of the N-substitution degree, and is important to many applications such as hydrogen storage and the tokamaks device. The electronic structure studies also explain well why nitrogen substitution increases the capacitance but decreases the electron conductivity of carbon electrodes as was experimentally observed in our experiments on the supercapacitor.

摘要

利用密度泛函理论方法对碳材料中的氮取代进行了理论研究。我们的计算表明,如果氢原子同时吸附在氮原子及其相邻的碳原子上,氮取代会降低氢吸附能。相反,如果氢原子仅吸附在相邻的碳原子上,氢吸附能会增加。这一原因可以通过对氮取代石墨烯片的电子结构分析来解释。氮取代会降低石墨烯片的π电子共轭并增加其最高占据分子轨道(HOMO)能量,并且由于氮原子的三价特性,它不稳定。这引发了一个关于优化氮取代度的有趣研究课题,并且对许多应用(如储氢和托卡马克装置)都很重要。电子结构研究也很好地解释了为什么在我们关于超级电容器的实验中,如实验所观察到的,氮取代会增加碳电极的电容但降低其电子导电性。

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