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Adsorption of small gas molecules on pure and Al-doped graphene sheet: a quantum mechanical study

机译:纯和掺杂石墨烯片上的小气体分子的吸附:量子力学研究

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摘要

The interaction of small gas molecules (CCl4, CH4, NH3, CO2, N-2, CO, NO2, CCl2F2, SO2, CF4, H-2) on pure and aluminium-doped graphene were investigated by using the density functional theory to explore their potential applications as sensors. It has been found that all gas molecules show much stronger adsorption on the Al-doped graphene than that of pure graphene (PG). The Al-doped graphene shows the highest adsorption energy with NO2, NH3 and CO2 molecules, whereas the PG binds strongly with NO2. Therefore, the strong interactions between the adsorbed gas molecules and the Al-doped graphene induce dramatic changes to graphene's electronic properties. These results reveal that the sensitivity of graphene-based gas sensor could be drastically improved by introducing the appropriate dopant or defect. It also carried out the highest occupied molecular orbital-lowest unoccupied molecular orbital energy gap of the complex molecular structure that has been explored by M06/6-31++G** method. These results indicate that the energy gap fine tuning of the pure and Al-doped graphene can be affected through the binding of small gas molecules.
机译:通过使用密度泛的功能理论来研究小气体分子(CCl4,CCl4,CH4,NH 3,CO 2,N-2,CO,NO 2,CCL2F2,SO2,CF4,H-2)的相互作用来探索纯和铝掺杂石墨烯上它们作为传感器的潜在应用。已经发现,所有气体分子在Al掺杂的石墨烯上显示得比纯石墨烯(PG)更强烈的吸附。 Al掺杂的石墨烯显示出具有NO2,NH 3和CO 2分子的最高吸附能量,而PG与NO2强烈结合。因此,吸附的气体分子与Al掺杂的石墨烯之间的强相互作用对石墨烯的电子性质引起显着变化。这些结果表明,通过引入适当的掺杂剂或缺陷,石墨烯的气体传感器的敏感性可以大大改善。它还进行了由M06 / 6-31 ++ G **方法探索的复杂分子结构的最高占用的分子轨道 - 最低的未占用分子轨道能隙。这些结果表明,纯和掺杂石墨烯的能隙微调可以通过小气体分子的结合来影响。

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