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Topological insulator states in a honeycomb lattice of s-triazines

机译:在蜂窝拓扑绝缘体的州晶格的s-triazines

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Two-dimensional (2D) graphitic carbon nitride materials have been drawing increasing attentions in energy conversion, environment protection and spintronic devices. Here, based on first-principles calculations, we demonstrate that the already-synthesized honeycomb lattice of s-triazines with a chemical formula of C6N6 (g-C6N6) has topologically nontrivial electronic states characterized by p_(x,y)-orbital band structures with a topological invariant of Z2 = 1, and stronger spin-orbital coupling (SOC) than both graphene and silicene. The band gaps opened in the p_(x,y)-orbital bands due to SOC are 5.50 meV (K points) and 8.27 eV (Γ point), respectively, implying that the quantum spin Hall effect (QSHE) could be achieved in this 2D graphitic carbon nitride material at a temperature lower than 95 K. This offers a viable approach for searching for 2D Topological Insulators (TIs) in metal-free organic materials.
机译:二维(2 d)石墨碳氮化材料已经吸引了越来越多的关注在能量转换、环境保护和自旋电子元件。采用基于计算,我们将演示的already-synthesized蜂巢晶格s-triazines C6N6的化学公式(g-C6N6)拓扑重要的电子州以p_ (x, y)轨道乐队结构的拓扑不变量Z2 =1,加强spin-orbital耦合(SOC)石墨烯和silicene。在p_ (x, y)轨道乐队由于SOC是5.50兆电子伏(K点)和8.27 eV(Γ点),分别,这意味着量子自旋霍尔效果(QSHE)可以实现2 d在石墨碳氮化材料温度低于95 K。寻找二维拓扑的方法绝缘体(TIs)不含金属的有机材料。

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