| Literature DB >> 26612469 |
Jinyang Liu1,2, Zhigao Huang3,4, Fachun Lai5,6, Limei Lin7,8, Yangyang Xu9, Chuandong Zuo10, Weifeng Zheng11, Yan Qu12.
Abstract
As is well established, mastery to precise control of the layer number, stacking order of graphene, and the size of single-crystal monolayer graphene is very important for both fundamental interest and practical applications. In this report, millimeter-sized single-crystal monolayer graphene has been synthesized to multilayer graphene on Cu by chemical vapor deposition. The relationship of the growth process between monolayer graphene and multilayer graphene is investigated carefully. Besides the general multilayer graphene with Bernal stacking order, parts of multilayer graphene with non-Bernal stacking order were modulated under optimized growth conditions. The oxide nanoparticle on the Cu surface derived from annealing has been found to play the key role in nucleation. In addition, the hydrogen concentration impacts significantly on the layer number and shape of the graphene. Moreover, a possible mechanism was proposed to understand the growth process discussed above, which may provide an instruction to graphene growth on Cu by chemical vapor deposition.Entities:
Keywords: Chemical vapor deposition; Graphene; Hydrogen concentration; Oxide nanoparticle; Stacking order
Year: 2015 PMID: 26612469 PMCID: PMC4661165 DOI: 10.1186/s11671-015-1164-0
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1a The photograph of the as-grown graphene domains on Cu foil after oxidation. b Optical microscopy images of the graphene domains in (a). c, d The SEM image and Raman spectroscopy of the single crystal graphene transferred to SiO2, respectively
Fig. 2a The photograph of the as-grown graphene domains on Cu foil after oxidation. b Optical microscopy images of the graphene domains in (a). c, d The optical microscopy and scanning electron microscopy of the multilayer graphene domains transferred to SiO2, respectively
Fig. 3a, b The Raman spectroscopy of the multilayer graphene with Bernal and non-Bernal stacking order, respectively. c, d The intensity of the D and 2D peak shown in (a) and (b) as a function of the graphene layer number. e, f The scheme of the multilayer graphene with Bernal and non-Bernal stacking order, respectively
Fig. 4The Scheme depicts the proposed mechanism for graphene domain growth. a The smooth Cu foil was obtained by cleaning with dilute hydrochloric acid and acetone under ultrasonic. b Formation of large oxide nanoparticles resulting from the mild oxidation by trace amounts of oxygen in Ar gas on the CVD chamber. c, d The large single-crystal monolayer graphene resulting from nucleation on the oxide nanoparticle with the growth speed on bottom layer graphene is high while on the top layer, graphene is suppressed in the high hydrogen concentration condition. e, f The multilayer graphene resulting from nucleation on the oxide nanoparticle with the growth speed between the bottom layer and top layer graphene is relatively equal in the low hydrogen concentration condition