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石墨烯上三甲基苯六甲酸堆叠组装的柱状结构

Columnar organization of stack-assembled trimesic acid on graphene.

作者信息

Shayeganfar F

机构信息

Engineering Physics Department and Regroupement québécois sur les matériaux de pointe (RQMP), Polytechnique Montréal, Montréal, Québec H3C 3A7, Canada.

出版信息

J Phys Condens Matter. 2014 Oct 29;26(43):435305. doi: 10.1088/0953-8984/26/43/435305. Epub 2014 Oct 9.

Abstract

The stack-assembly of trimesic acid molecules into a highly organized columnar structure and their adsorption on graphene has been investigated by a DFT-based ab initio calculation method. Trimesic acid (TMA, benzene-1,3,5-tricarboxylic acid) constitutes an interesting building block for intermolecular hydrogen-bonding architecture by creating a strong net dipole moment which favors a symmetric π-stacking of molecular wire. Both the single orientation (syn) and alternating orientation (anti) of two- and three-unit TMA configurations are optimized, and determine that anti or AB pattern TMA wire is energetically more favorable than the syn case. Meanwhile, a decreasing band gap during the formation of the molecular wire proves the presence of delocalized π-electrons over the entire stack-assembly. The adsorption energy for a columnar TMA stack on graphene was found to be roughly less than of a single TMA adsorbed on graphene. The relative contribution of hydrogen bonding to column packing energy showed to be comparative and reasonable, with the energy of a conventional hydrogen bond. The magnitude of the band gap opening appears strongly correlated with the breaking of the symmetry of π-states of graphene by the TMA columnar patterning on the surface. Our results suggest that a stack-assembled molecular could be used to tune and control the electronic properties of graphene.

摘要

通过基于密度泛函理论(DFT)的从头算计算方法,研究了均苯三甲酸分子堆叠组装成高度有序的柱状结构及其在石墨烯上的吸附情况。均苯三甲酸(TMA,苯 - 1,3,5 - 三羧酸)通过产生强大的净偶极矩,构成了分子间氢键结构中一个有趣的构建单元,有利于分子线的对称π堆积。对两单元和三单元TMA构型的单取向(顺式)和交替取向(反式)进行了优化,确定反式或AB型TMA线在能量上比顺式情况更有利。同时,分子线形成过程中带隙的减小证明了在整个堆叠组装中存在离域π电子。发现柱状TMA堆叠在石墨烯上的吸附能大致小于单个TMA吸附在石墨烯上的吸附能。氢键对柱填充能量的相对贡献显示出与传统氢键能量具有可比性且合理。带隙开口的大小似乎与表面上TMA柱状图案破坏石墨烯π态的对称性密切相关。我们的结果表明,堆叠组装的分子可用于调节和控制石墨烯的电子性质。

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