Nara Jun, Higai Shin'ichi, Morikawa Yoshitada, Ohno Takahisa
National Institute for Materials Science (NIMS), 1-2-1 Sengen, Tsukuba-shi, Ibaraki 305-0047, Japan.
J Chem Phys. 2004 Apr 8;120(14):6705-11. doi: 10.1063/1.1651064.
We have studied the adsorption of benzenethiol molecules on the Au(111) surface by using first principles total energy calculations. A single thiolate molecule is adsorbed at the bridge site slightly shifted toward the fcc-hollow site, and is tilted by 61 degrees from the surface normal. As for the self-assembled monolayer (SAM) structures, the (2 square root of 3 x square root of 3)R30 degrees herringbone structure is stabilized against the (square root 3 x square root 3)R30 degrees structure by large steric relaxation. In the most stable (2 square root 3 x square root 3)R30 degrees SAM structure, the molecule is adsorbed at the bridge site with the tilting angle of 21 degrees, which is much smaller compared with the single molecule adsorption. The van der Waals interaction plays an important role in forming the SAM structure. The adsorption of benzenethiolates induces the repulsive interaction between surface Au atoms, which facilitates the formation of surface Au vacancy.
我们通过第一性原理总能计算研究了苯硫醇分子在Au(111)表面的吸附。单个硫醇盐分子吸附在桥位,略微向面心立方空位偏移,并与表面法线倾斜61度。至于自组装单分子层(SAM)结构,通过大的空间弛豫,(2√3×√3)R30°人字结构相对于(√3×√3)R30°结构更稳定。在最稳定的(2√3×√3)R30°SAM结构中,分子以21度的倾斜角吸附在桥位,与单分子吸附相比要小得多。范德华相互作用在形成SAM结构中起重要作用。苯硫醇盐的吸附诱导了表面金原子之间的排斥相互作用,这有利于表面金空位的形成。