Kher-Elden Mohammed A, Piquero-Zulaica Ignacio, Abd El-Aziz Kamel M, Ortega J Enrique, Abd El-Fattah Zakaria M
Physics Department, Faculty of Science, Al-Azhar University Nasr City 11884 Cairo Egypt
Physik Department E20, Technische Universität München 85748 Garching Germany.
RSC Adv. 2020 Sep 14;10(56):33844-33850. doi: 10.1039/d0ra06007k. eCollection 2020 Sep 10.
We present electronic structure calculations based on a single-parameter plane wave expansion method for basic graphene building blocks, namely -oligophenylenes and -oligoacenes, revealing excellent agreement with density-functional theory. When oligophenylene molecules are joined through (zigzag) or (chevron) junctions, the resulting molecular dimers and polymers exhibit a semiconducting character. While zigzag dimers of oligoacenes also exhibit gapped electronic structures, their chevron-phase features a sharp metallic band at the Fermi energy. This zero-point-energy state, which transforms into Dirac-like band in chevron polymers, survives at the outer elbows of the dimer irrespective of the molecular length, and has the same origin as reported for the polyacetylene and topologically induced edge states at edge-decorated graphene nanoribbons. These findings assist the engineering of topological electronic states at the molecular level and complement the toolbox of quantum phases in carbon-based nanostructures.
我们基于单参数平面波展开方法,对基本的石墨烯构建单元,即低聚苯撑和低聚并苯,进行了电子结构计算,结果显示与密度泛函理论高度吻合。当低聚苯撑分子通过锯齿形(zigzag)或人字形(chevron)连接时,形成的分子二聚体和聚合物呈现半导体特性。虽然低聚并苯的锯齿形二聚体也表现出带隙电子结构,但其人字形相在费米能级处有一个尖锐的金属带。这种零点能量态在二聚体的外肘部得以保留,无论分子长度如何,它在人字形聚合物中会转变为类狄拉克带,其起源与聚乙炔以及边缘修饰的石墨烯纳米带中拓扑诱导的边缘态相同。这些发现有助于在分子水平上设计拓扑电子态,并补充了碳基纳米结构中量子相的工具箱。