TY - JOUR
T1 - Insight into CO2 Etching Behavior for Efficiently Nanosizing Graphene
AU - Yang, Xue
AU - Hu, Baoshan
AU - Jin, Yan
AU - Zhao, Wenbin
AU - Luo, Zhengtang
AU - Lu, Zhisong
AU - Fang, Liang
AU - Ruan, Haibo
N1 - Publisher Copyright:
© 2017 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2017/5/23
Y1 - 2017/5/23
N2 - Chemical etching of graphene over catalytic metal surface holds great potential in nanosizing the graphene microstructure and thus modulating its properties. Herein, it has been demonstrated that gaseous CO2 can efficiently etch the monolayer graphene film grown by chemical vapor deposition catalyzed with the surface of Cu foil. During the etching process, the CO2 etching rate is monotonously dependent on the CO2 flowrate and the etching temperature, and is faster than the H2 etching which has been usually employed for the graphene patterning. Moreover, the resultant graphene flakes by the CO2 etching remain the originally high crystallinity and are free of being oxidized. Also, a 120° angle between the neighboring edges and hexagonal morphology of graphene flakes can be realized for the potential shape regulation of nanostructured graphene, which is similar as the anisotropic etching of H2. These results illustrate that the CO2 etching over the metal surface can provide a promising strategy for the precisely fabrication of nanostructured graphene materials.
AB - Chemical etching of graphene over catalytic metal surface holds great potential in nanosizing the graphene microstructure and thus modulating its properties. Herein, it has been demonstrated that gaseous CO2 can efficiently etch the monolayer graphene film grown by chemical vapor deposition catalyzed with the surface of Cu foil. During the etching process, the CO2 etching rate is monotonously dependent on the CO2 flowrate and the etching temperature, and is faster than the H2 etching which has been usually employed for the graphene patterning. Moreover, the resultant graphene flakes by the CO2 etching remain the originally high crystallinity and are free of being oxidized. Also, a 120° angle between the neighboring edges and hexagonal morphology of graphene flakes can be realized for the potential shape regulation of nanostructured graphene, which is similar as the anisotropic etching of H2. These results illustrate that the CO2 etching over the metal surface can provide a promising strategy for the precisely fabrication of nanostructured graphene materials.
KW - CO etching
KW - crystalline quality
KW - monolayer graphene
KW - morphology regulation
KW - surficial catalysis
UR - https://www.webofscience.com/wos/woscc/full-record/WOS:000401870500004
UR - https://openalex.org/W2593942545
UR - https://www.scopus.com/pages/publications/85014589486
U2 - 10.1002/admi.201601065
DO - 10.1002/admi.201601065
M3 - Journal Article
SN - 2196-7350
VL - 4
JO - Advanced Materials Interfaces
JF - Advanced Materials Interfaces
IS - 10
M1 - 1601065
ER -