Department of Chemistry, Rasht Branch, Islamic Azad University, Rasht, Iran.
Department of Chemistry, Faculty of Sciences, University of Guilan, Rasht, Iran.
J Mol Graph Model. 2023 Dec;125:108612. doi: 10.1016/j.jmgm.2023.108612. Epub 2023 Aug 24.
Optical and electronic characteristics of the graphene nanosheets (GNS) could be altered by some structural defects such as double-vacancy and Stone-Wales ones. The physisorption manner of [MPI][BF], [MPT1][BF], [MPT2][BF], and [MPTT][BF] ionic liquids on intact and defective GNS surfaces were investigated using M06-2X/cc-pVDZ computational method. Capability for adsorption on the DV and SW graphene surfaces by TILs is increased by about 1.0-4.3 and 0.4-2.0 kcal/mol respectively. The electrostatic potential of the GNS-DV surface is more negative than the GNS-SW one which enables it to interact with cation parts of the adsorbed TILs so extensively. The highest adsorption energy belongs to the [MPI][BF]/GNS-DV system. Adsorption of the TILs on the GNS surfaces leads to a decrease in the energy of the LUMO molecular orbital as well as their energy gap of them. Results revealed that the electrical conductivity, as well as absorption spectra of the GNS surfaces, are affected by TILs adsorption and defect nature.
石墨烯纳米片(GNS)的光学和电子特性可以通过一些结构缺陷(如双空位和 Stone-Wales 缺陷)来改变。使用 M06-2X/cc-pVDZ 计算方法研究了[MPI][BF]、[MPT1][BF]、[MPT2][BF]和[MPTT][BF]离子液体在完整和有缺陷的 GNS 表面上的物理吸附方式。TILs 在 DV 和 SW 石墨烯表面上的吸附能力分别增加了约 1.0-4.3 和 0.4-2.0 kcal/mol。GNS-DV 表面的静电势比 GNS-SW 表面更负,这使得它能够与吸附的 TILs 的阳离子部分广泛相互作用。最高吸附能属于[MPI][BF]/GNS-DV 体系。TILs 在 GNS 表面上的吸附导致 LUMO 分子轨道能量以及它们的能隙降低。结果表明,TILs 的吸附和缺陷性质会影响 GNS 表面的电导率和吸收光谱。