ISSN   1004-0595

CN  62-1224/O4

高级检索
王顺花, 霍磊, 鞠鹏飞, 蒲吉斌. 无氢类金刚石薄膜表面H2O和O2分子共同作用的第一性原理计算[J]. 摩擦学学报, 2019, 39(3): 350-356. DOI: 10.16078/j.tribology.2018013
引用本文: 王顺花, 霍磊, 鞠鹏飞, 蒲吉斌. 无氢类金刚石薄膜表面H2O和O2分子共同作用的第一性原理计算[J]. 摩擦学学报, 2019, 39(3): 350-356. DOI: 10.16078/j.tribology.2018013
WANG Shunhua, HUO Lei, JU Pengfei, PU Jibin. The First-Principles Calculations of the Interaction of H2O and O2 Molecules on the Surface of Hydrogen-Free Diamond Films[J]. TRIBOLOGY, 2019, 39(3): 350-356. DOI: 10.16078/j.tribology.2018013
Citation: WANG Shunhua, HUO Lei, JU Pengfei, PU Jibin. The First-Principles Calculations of the Interaction of H2O and O2 Molecules on the Surface of Hydrogen-Free Diamond Films[J]. TRIBOLOGY, 2019, 39(3): 350-356. DOI: 10.16078/j.tribology.2018013

无氢类金刚石薄膜表面H2O和O2分子共同作用的第一性原理计算

The First-Principles Calculations of the Interaction of H2O and O2 Molecules on the Surface of Hydrogen-Free Diamond Films

  • 摘要: 无氢类金刚石碳基薄膜(Diamond-like carbon,DLC)在潮湿大气环境中具有较低的摩擦系数,这主要是由于环境中的H2O和O2两种活性分子钝化了无氢DLC薄膜表面的悬键,但迄今两种活性分子对无氢DLC薄膜低摩擦行为的协同影响机制仍不清楚. 本文中通过第一性原理计算方法研究了H2O和O2分子共存时在金刚石表面的钝化状态,并推测了无氢DLC薄膜实现低摩擦的可能途径. 结果表明:H2O和O2两种活性分子在金刚石表面分解形成OH、H及O基团,其中O原子和H原子的相互吸引能够促使其形成OH基团. 当H2O分子和O2分子按比例2:1共存时,金刚石表面全部由OH基团钝化,而非2:1比例时,金刚石表面会形成C-OH、C-H和C-O共存的复杂情况.

     

    Abstract: The hydrogen-free diamond-like carbon (DLC) films can produce low coefficient of friction in humid atmosphere, which mainly due to the passivation of " dangling bonds” on the surface of carbon-based thin films by H2O and O2 active molecules. However, the mechanism of the synergistic effect of the two molecules on the low-friction behavior of hydrogen-free DLC remains is unclear. The first-principles calculations were performed to investigate the passivation state of diamond surface when H2O and O2 molecules coexisted, and the possible ways of achieving low friction with hydrogen-free DLC films were inferred. The results show that H2O and O2 molecules were decomposed to form OH, H and O. At the same time, the mutual attraction of O atom and H atom promoted the formation of more OH groups. When H2O and O2 molecules coexisted in the ratio of 2:1, the diamond surface was completely passivated by the OH group. In contrast, the diamond surface formed a complicated situation in which C-OH, C-H, and C-O coexisted.

     

/

返回文章
返回