Adsorption of C-60 molecules

被引:89
作者
Gravil, PA
Devel, M
Lambin, P
Bouju, X
Girard, C
Lucas, AA
机构
[1] UNIV FRANCHE COMTE,PHYS MOLEC LAB,F-25030 BESANCON,FRANCE
[2] FAC UNIV NOTRE DAME PAIX,DEPT PHYS,B-5000 NAMUR,BELGIUM
来源
PHYSICAL REVIEW B | 1996年 / 53卷 / 03期
关键词
D O I
10.1103/PhysRevB.53.1622
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A self-consistent real-space scheme for calculating the van der Waals interaction energy between a fullerene molecule and substrate with atomic surface corrugation is presented. The interaction of a single fullerene molecule with various substrates is then considered, to determine the optimum binding energy, plus the rotational and translational diffusion barriers. The van der Waals energy is calculated using linear response theory to evaluate the dipole-dipole interactions between the molecule and the substrate. The method is extended beyond the treatment of the substrate as a continuous dielectric medium to a discrete stratified substrate including the atomic nature of the surface. For C-60 On graphite the fullerene is always preferentially oriented so as to present a six-membered ring to the surface. The optimum binding energy is found to be 0.96 eV, with the molecule positioned so as to continue the natural stacking of the hexagonal planes. For C-60 on NaCl(001) the most stable position is found to be above a sodium cation with a five-membered ring oriented towards the surface, and a binding energy of 0.42 eV. Unlike the situation for graphite, though, the orientation of the molecule changes with adsorption site. The energy barrier for rotation of an isolated C-60 molecule is of the order of 0.03 eV on both surfaces. Luthi et al. [Science 266, 1979 (1994)] recently reported that islands of C-60 deposited on NaCl(001) could be moved by the action of the tip of a scanning force microscope, whereas for C-60 On graphite, collective motion of the islands could not be achieved, instead the islands were disrupted by the tip; These results can be explained in terms of the relative strengths of the C-60-C-60, C-60-graphite, and C-60-NaCl interactions and the reduction of the rotational barriers of the interface molecules due to collective effects.
引用
收藏
页码:1622 / 1629
页数:8
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