利用量子力学技术对(9,0)单壁碳纳米管的理论研究

D. Sharma, N. Jaggi
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引用次数: 0

摘要

利用材料工作室软件7.0版的CASTEP (Cambridge Sequential Total Energy Package)和DFTB (density functional based Tight Binding)模块,利用密度泛函理论对(9,0)之字形单壁碳纳米管(SWCNT)进行了第一性原理模拟研究,以研究其电子、光学和热力学性质。已经尝试了CASTEP模块中可用的各种功能和子功能(使用Pulay密度混合处理电子)和DFTB模块中可用的各种特征求解器和涂抹方案(使用智能算法)来绘制电子结构。将解析推导得到的带隙值与文献报道的实验测定值进行了比较。通过比较,Anderson涂抹方案与标准对话器的组合在DFTB模块中效果最好,而在CASTEP模块中,GGA (General Gradient approximation)泛函以RPBE (revision -perdew- burke - ernzerh)为子泛函的一致性最好。然后利用这些优化参数来测定(9,0)单壁纳米管的各种电子、光学和热力学性质。(9,0)单壁纳米管被广泛用于传感NH3, CH4和NO2,特别是因为据报道,与预期的金属性质相反,它表现出有限的能带隙。该研究不仅探索和验证了预测纳米材料合适性质的模拟途径,而且揭示了模拟研究中使用的不同近似和合理化量子力学技术的比较功效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A theoretical study of (9, 0) Singlewalled Carbon Nanotubes using quantum mechanical techniques
First principles simulation studies using the density functional theory have been performed on (9, 0) Zigzag Singlewalled Carbon Nanotube (SWCNT) to investigate its electronic, optical and thermodynamic properties using CASTEP (Cambridge Sequential Total Energy Package) and DFTB (Density Functional based Tight Binding) modules of the Material Studio Software version 7.0. Various functionals and sub-functionals available in the CASTEP Module (using Pulay Density Mixing treatment of electrons) and various eigen-solvers and smearing schemes available in the DFTB module (using smart algorithm) have been tried out to chalk out the electronic structure. The analytically deduced values of the band gap obtained were compared with the experimentally determined value reported in the literature. By comparison, combination of Anderson smearing scheme and standard diaogonalizer produced best results in DFTB module while in the CASTEP module, GGA (General Gradient approximation) functional with RPBE (Revised-perdew-Burke-Ernzerh) as Sub-functional was found to be the most consistent. These optimized parameters were then used to determine various electronic, optical and thermodynamic properties of (9, 0) Singlewalled Nanotube. (9, 0) Singlewalled Nanotube, which is extensively being used for sensing NH3, CH4 & NO2, has been picked up in particular as it is reported to exhibit a finite energy band gap in contrast to its expected metallic nature. The study is of utmost significance as it not only probes and validates the simulation route for predicting suitable properties of nanomaterials but also throws light on the comparative efficacy of the different approximation and rationalization quantum mechanical techniques used in simulation studies.
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