Institute of Physics and School of Physical Sciences and CAS Center for Excellence in Topological Quantum Computation, University of Chinese Academy of Sciences, Chinese Academy of Sciences, Beijing, 100190, China.
Department of Physics and Astronomy and Department of Electrical Engineering and Computer Science, Vanderbilt University, Nashville, TN, 37235, USA.
Adv Mater. 2018 Aug;30(32):e1801838. doi: 10.1002/adma.201801838. Epub 2018 Jun 25.
Periodically hydrogenated graphene is predicted to form new kinds of crystalline 2D materials such as graphane, graphone, and 2D C H , which exhibit unique electronic properties. Controlled synthesis of periodically hydrogenated graphene is needed for fundamental research and possible electronic applications. Only small patches of such materials have been grown so far, while the experimental fabrication of large-scale, periodically hydrogenated graphene has remained challenging. In the present work, large-scale, periodically hydrogenated graphene is fabricated on Ru(0001). The as-fabricated hydrogenated graphene is highly ordered, with a √3 × √3/R30° period relative to the pristine graphene. As the ratio of hydrogen and carbon is 1:3, the periodically hydrogenated graphene is named "one-third-hydrogenated graphene" (OTHG). The area of OTHG is up to 16 mm . Density functional theory calculations demonstrate that the OTHG has two deformed Dirac cones along one high-symmetry direction and a finite energy gap along the other directions at the Fermi energy, indicating strong anisotropic electrical properties. An efficient method is thus provided to produce large-scale crystalline functionalized graphene with specially desired properties.
周期性氢化石墨烯有望形成新的二维晶体材料,如氢化石墨烯、石墨炔和二维 C H ,它们具有独特的电子特性。为了进行基础研究和可能的电子应用,需要对周期性氢化石墨烯进行可控合成。迄今为止,这种材料只生长了很小的区域,而大规模、周期性氢化石墨烯的实验制备仍然具有挑战性。在本工作中,我们在 Ru(0001)上制备了大面积的周期性氢化石墨烯。所制备的氢化石墨烯具有高度有序性,相对于原始石墨烯具有 √3×√3/R30°的周期性。由于氢和碳的比例为 1:3,因此周期性氢化石墨烯被命名为“三分之一氢化石墨烯”(OTHG)。OTHG 的面积可达 16 平方毫米。密度泛函理论计算表明,OTHG 在费米能级处沿一个高对称方向具有两个变形的狄拉克锥,而在其他方向具有有限的能隙,表明其具有强烈的各向异性电学性质。因此,提供了一种有效的方法来制备具有特殊性能的大面积结晶功能化石墨烯。