Thuy Tran Ngoc Thanh, Lin Shih-Yang, Lin Yu-Tsung, Lin Ming-Fa
Department of Physics, National Cheng Kung University, 701 Tainan, Taiwan.
Phys Chem Chem Phys. 2016 Feb 7;18(5):4000-7. doi: 10.1039/c5cp06897e.
The electronic properties of graphene oxides enriched by strong chemical bonding are investigated using first-principles calculations. They are very sensitive to the changes in the number of graphene layers, stacking configuration, and distribution of oxygen. The feature-rich electronic structures exhibit destruction or distortion of the Dirac cone, opening of a band gap, anisotropic energy dispersions, O- and (C,O)-dominated energy dispersions, and extra critical points. All of the few-layer graphene oxides are semi-metals except for the semiconducting monolayer ones. For the former, the distorted Dirac-cone structures and the O-dominated energy bands near the Fermi level are revealed simultaneously. The orbital-projected density of states (DOS) has many special structures mainly coming from a composite energy band, the parabolic and partially flat ones. The DOS and spatial charge distributions clearly indicate the critical orbital hybridizations in O-O, C-O and C-C bonds, being responsible for the diversified properties.
利用第一性原理计算研究了通过强化学键富集的氧化石墨烯的电子性质。它们对石墨烯层数、堆叠构型和氧分布的变化非常敏感。富含特征的电子结构表现出狄拉克锥的破坏或畸变、带隙的打开、各向异性的能量色散、以O和(C,O)为主的能量色散以及额外的临界点。除了半导体单层氧化石墨烯外,所有少层氧化石墨烯都是半金属。对于前者,同时揭示了扭曲的狄拉克锥结构和费米能级附近以O为主的能带。轨道投影态密度(DOS)有许多特殊结构,主要来自复合能带、抛物线形和部分平坦的能带。DOS和空间电荷分布清楚地表明了O-O、C-O和C-C键中的关键轨道杂化,这是导致其多样性质的原因。