TY - JOUR
T1 - Adsorption and dissociation of CH 4 on graphene
T2 - A density functional theory study
AU - Li, Kun
AU - Li, Hejun
AU - Yan, Ningning
AU - Wang, Tiyuan
AU - Zhao, Zhigang
N1 - Publisher Copyright:
© 2018
PY - 2018/11/30
Y1 - 2018/11/30
N2 - To investigate the mechanism of the heterogenous reactions during the Chemical vapor infiltration (CVI) process of carbon/carbon composites, the dissociation of CH 4 on graphene was calculated by density functional theory (DFT). Graphene was used as the adsorption surface in the course of the heterogenous reactions. Based on the energy analysis, the preferred adsorption sites of CH x (x = 0–4) and H on graphene were obtained. Then, the stable co-adsorption configurations of CH x /H(x = 0–3) on graphene were located. The calculation results show that CH 4 , CH 3 and H prefer to be adsorbed at the top of a carbon atom of graphene, while CH 2 , CH and C are favorable on the midpoint of a C–C bond of graphene. Transition state (TS) calculation shows that the dissociation of CH 4 into CH 3 and H is a rate-determining step. Additionally, by comparing the dissociation of CH 3 into CH 2 and H and the formation of C 2 H 6 during the dissociation of CH 4 , it is obvious that the CH 3 groups are more likely to produce ethane rather than dissociating into CH 2 and H.
AB - To investigate the mechanism of the heterogenous reactions during the Chemical vapor infiltration (CVI) process of carbon/carbon composites, the dissociation of CH 4 on graphene was calculated by density functional theory (DFT). Graphene was used as the adsorption surface in the course of the heterogenous reactions. Based on the energy analysis, the preferred adsorption sites of CH x (x = 0–4) and H on graphene were obtained. Then, the stable co-adsorption configurations of CH x /H(x = 0–3) on graphene were located. The calculation results show that CH 4 , CH 3 and H prefer to be adsorbed at the top of a carbon atom of graphene, while CH 2 , CH and C are favorable on the midpoint of a C–C bond of graphene. Transition state (TS) calculation shows that the dissociation of CH 4 into CH 3 and H is a rate-determining step. Additionally, by comparing the dissociation of CH 3 into CH 2 and H and the formation of C 2 H 6 during the dissociation of CH 4 , it is obvious that the CH 3 groups are more likely to produce ethane rather than dissociating into CH 2 and H.
KW - CH
KW - Density functional theory
KW - Dissociation
KW - Graphene
UR - http://www.scopus.com/inward/record.url?scp=85051266852&partnerID=8YFLogxK
U2 - 10.1016/j.apsusc.2018.08.084
DO - 10.1016/j.apsusc.2018.08.084
M3 - 文章
AN - SCOPUS:85051266852
SN - 0169-4332
VL - 459
SP - 693
EP - 699
JO - Applied Surface Science
JF - Applied Surface Science
ER -