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Heptagraphene: Tunable Dirac Cones in a Graphitic Structure

机译:七石墨烯:石墨结构中的可调狄拉克锥。

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摘要

We predict the existence and dynamical stability of heptagraphene, a new graphitic structure formed of rings of 10 carbon atoms bridged by carbene groups yielding seven-membered rings. Despite the rectangular unit cell, the band structure is topologically equivalent to that of strongly distorted graphene. Density-functional-theory calculations demonstrate that heptagraphene has Dirac cones on symmetry lines that are robust against biaxial strain but which open a gap under shear. At high deformation values bond reconstructions lead to different electronic band arrangements in dynamically stable configurations. Within a tight-binding framework this richness of the electronic behavior is identified as a direct consequence of the symmetry breaking within the cell which, unlike other graphitic structures, leads to band gap opening. A combined approach of chemical and physical modification of graphene unit cell unfurls the opportunity to design carbon-based systems in which one aims to tune an electronic band gap.
机译:我们预测了庚碳烯的存在和动力学稳定性,庚碳烯是一种新的石墨结构,由碳烯基桥接的10个碳原子的环构成,产生七元环。尽管具有矩形晶胞,但其能带结构在拓扑学上等同于严重扭曲的石墨烯。密度泛函理论计算表明,庚烯在对称线上具有狄拉克锥,可抵抗双轴应变,但在剪切作用下会产生间隙。在高变形值处,键重建导致动态稳定配置中的不同电子带布置。在紧密结合的框架内,这种电子行为的丰富性被认为是细胞内对称性破坏的直接结果,与其他石墨结构不同,对称性破坏导致带隙打开。对石墨烯晶胞进行化学和物理修饰的组合方法,为设计基于碳的系统提供了契机,该系统旨在调节电子带隙。

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