Weng Meng Hsiung, Hsieh Jin Yuan, Ju Shin Pon, Chang Jee Gong, Chen Hsin Tsung, Chen Hui Lung, Lin Jenn Sen, Lee Wen Jay
Department of Mechanical and Electro-Mechanical Engineering, Center for Nanoscience and Nanotechnology, National Sun Yat-Sen University, Kaohsiung 804, Taiwan, Republic of China.
J Nanosci Nanotechnol. 2010 Nov;10(11):7196-9. doi: 10.1166/jnn.2010.2921.
The adsorption and dissociation of O2 molecules on W(111) surface have been studied at the density functional theory (DFT) level in conjunction with the projector augmented wave (PAW) method. All passable dissociation reaction paths of O2 molecule on W(111) surface are considered. The nudged elastic band (NEB) method is applied to locate transition states, and minimum energy pathways (MEP). We find that there is an existing of little barriers for the dissociations reaction of O2 molecule. Ab initio molecular dynamics simulation is also preformed to study the adsorption and dissociation mechanism of O2 molecules on the W(111) surface. Our results indicate that O2 molecule will be dissociated by inclined deposition at temperature of 10 K, but can stable adsorb on top site by normal deposition. The change of bond length and adsorption energy in process of dissociation of O2 molecules on the W(111) surface are also calculated. The O2 coverage effect is also discussed in this paper.
采用密度泛函理论(DFT)结合投影增强波(PAW)方法,研究了O₂分子在W(111)表面的吸附和解离。考虑了O₂分子在W(111)表面所有可能的解离反应路径。采用推挤弹性带(NEB)方法来定位过渡态和最小能量路径(MEP)。我们发现O₂分子的解离反应存在较小的势垒。还进行了从头算分子动力学模拟,以研究O₂分子在W(111)表面的吸附和解离机制。我们的结果表明,在10 K温度下,O₂分子通过倾斜沉积会发生解离,但通过垂直沉积可稳定吸附在顶位。还计算了O₂分子在W(111)表面解离过程中键长和吸附能的变化。本文还讨论了O₂覆盖度的影响。