Jiang Yong-Cheng, Kariyado Toshikaze, Hu Xiao
Research Center for Materials Nanoarchitectonics (MANA), National Institute for Materials Science (NIMS), Tsukuba 305-0044, Japan.
Graduate School of Science and Technology, University of Tsukuba, Tsukuba 305-8571, Japan.
Nanotechnology. 2024 Feb 19;35(19). doi: 10.1088/1361-6528/ad2483.
We unveil that the holey graphyne (HGY), a two-dimensional carbon allotrope where benzene rings are connected by two -C≡C- bonds fabricated recently in a bottom-up way, exhibits topological electronic states. Using first-principles calculations and Wannier tight-binding modeling, we discover a higher-order topological invariant associated withsymmetry of the material, and show that the resultant corner modes appear in nanoflakes matching to the structure of precursor reported previously, which are ready for direct experimental observations. In addition, we find that a band inversion between emergent-like and-like orbitals gives rise to a nontrivial topology characterized byZ2invariant protected by an energy gap as large as 0.52 eV, manifesting helical edge states mimicking those in the prominent quantum spin Hall effect, which can be accessed experimentally after hydrogenation in HGY. We hope these findings trigger interests towards exploring the topological electronic states in HGY and related future electronics applications.
我们揭示了一种最近通过自下而上的方法制备的二维碳同素异形体——多孔石墨炔(HGY),其中苯环由两个-C≡C-键连接,它呈现出拓扑电子态。通过第一性原理计算和Wannier紧束缚模型,我们发现了一个与材料对称性相关的高阶拓扑不变量,并表明由此产生的角模式出现在与先前报道的前驱体结构相匹配的纳米片中,这些纳米片易于进行直接实验观测。此外,我们发现类涌现轨道和类轨道之间的能带反转产生了一个由0.52 eV的能隙保护的Z2不变量表征的非平凡拓扑,表现出类似于著名的量子自旋霍尔效应中的螺旋边缘态,在HGY中氢化后可通过实验实现。我们希望这些发现激发人们对探索HGY中的拓扑电子态以及相关未来电子应用的兴趣。