Chehelamirani Morteza, da Silva Maurício C, Salahub Dennis R
Department of Chemistry and Centre for Molecular Simulation, University of Calgary, 2500 University Drive NW, Calgary, AB T2N 1N4, Canada.
Phys Chem Chem Phys. 2017 Mar 8;19(10):7333-7342. doi: 10.1039/c6cp08376e.
Electronic properties of carbon nanotubes (CNTs) play an important role in their interactions with nano-structured materials. In this work, interactions of adenosine monophosphate (AMP), a DNA nucleotide, with metallic and semi-conducting CNTs are studied using the density functional tight binding (DFTB) method. The electronic structure of semi-conducting CNTs was found to be changed as they turned to metallic CNTs in a vacuum upon interaction with the nucleotide while metallic CNTs remain metallic. Specifically, the band gap of semi-conducting CNTs was decreased by 0.79 eV on average while nearly no change was found in the metallic tubes. However, our investigations showed that the presence of explicit water molecules prevents the metallicity change and only small changes in the CNT band gap occur. According to our charge analysis, the average negative charge accumulated on CNTs upon interaction with the AMP was determined to be 0.77 e in a vacuum while it was 0.03 e in solution. Therefore, it is essential to include explicit water molecules in simulating complexes formed by DNA nucleotides and CNTs which were ignored in several past studies performed using quantum mechanical approaches.
碳纳米管(CNTs)的电子特性在其与纳米结构材料的相互作用中起着重要作用。在这项工作中,使用密度泛函紧束缚(DFTB)方法研究了DNA核苷酸单磷酸腺苷(AMP)与金属性和半导性碳纳米管的相互作用。研究发现,半导性碳纳米管与核苷酸在真空中相互作用转变为金属性碳纳米管时,其电子结构发生了变化,而金属性碳纳米管仍保持金属性。具体而言,半导性碳纳米管的带隙平均降低了0.79 eV,而金属性碳纳米管几乎没有变化。然而,我们的研究表明,明确存在的水分子可防止金属性变化,且碳纳米管带隙仅发生微小变化。根据我们的电荷分析,在真空中,与AMP相互作用时碳纳米管上积累的平均负电荷为0.77 e,而在溶液中为0.03 e。因此,在模拟由DNA核苷酸和碳纳米管形成的复合物时,必须包含明确的水分子,而在过去一些使用量子力学方法进行的研究中忽略了这一点。