Srivastava Juhi, Gaur Anshu
Department of Materials Science and Engineering, Indian Institute of Technology Kanpur Kanpur 208016 Uttar Pradesh India
Samtel Centre for Display Technologies, Indian Institute of Technology Kanpur Kanpur 208016 Uttar Pradesh India.
Nanoscale Adv. 2021 Feb 5;3(7):2030-2038. doi: 10.1039/d0na00881h. eCollection 2021 Apr 6.
Hybrid carbon nanostructures based on single walled carbon nanotubes (SWNTs) and single layer graphene (SLG) have drawn much attention lately for their applications in a range of efficient hybrid devices. A few recent studies, addressing the interaction behavior at the heterojunction, considered charge transfer between the constituents (SWNTs and SLG) to be responsible for changes in the electronic and vibrational properties of their hybrid system. We report the effect of various factors, arising due to the interactions between the atoms of SWNTs and SLG, on the structural and vibrational properties of hybrid nanostructures investigated computationally within the framework of tight-binding DFT. These factors, such as the van der Waals (vdW) forces, structural deformation and charge transfer, are seen to affect the Raman active phonon frequencies of SWNTs and SLG in the hybrid nanostructure. These factors are already known to affect the vibrational properties of SWNTs and SLG separately and in this work, we have explored their role and interplay between these factors in hybrid systems. The contribution of different factors to the total shift observed in phonon frequencies is estimated and it is perceived from our findings that not only the charge transfer but the structural deformations and the vdW forces also affect the vibrational properties of components within the hybrid, with structural deformation being the leading factor. With decreasing separation between SWNTs and SLG, the charge transfer and the vdW forces both increase. However, the increase in vdW forces is relatively much higher and likely to be the main cause for larger Raman shifts observed at smaller separations.
基于单壁碳纳米管(SWNTs)和单层石墨烯(SLG)的混合碳纳米结构,因其在一系列高效混合器件中的应用,近来备受关注。最近的一些研究探讨了异质结处的相互作用行为,认为组分(SWNTs和SLG)之间的电荷转移是其混合体系电子和振动性质变化的原因。我们报告了由于SWNTs和SLG原子之间的相互作用而产生的各种因素,对在紧束缚密度泛函理论框架内通过计算研究的混合纳米结构的结构和振动性质的影响。这些因素,如范德华(vdW)力、结构变形和电荷转移,被发现会影响混合纳米结构中SWNTs和SLG的拉曼活性声子频率。这些因素已被知晓会分别影响SWNTs和SLG的振动性质,在这项工作中,我们探讨了它们在混合体系中的作用以及这些因素之间的相互作用。估计了不同因素对声子频率总位移的贡献,从我们的研究结果可以看出,不仅电荷转移,而且结构变形和vdW力也会影响混合体系中各组分的振动性质,其中结构变形是主要因素。随着SWNTs和SLG之间间距的减小,电荷转移和vdW力都会增加。然而,vdW力的增加相对要高得多,很可能是在较小间距处观察到较大拉曼位移的主要原因。