Kerwin Jay, Sha Xianwei, Jackson Bret
Department of Chemistry, University of Massachusetts, Amherst, Massachusetts 01003, USA.
J Phys Chem B. 2006 Sep 28;110(38):18811-7. doi: 10.1021/jp057136+.
The trapping and sticking of H and D atoms on the graphite (0001) surface is examined over the energy range 0.1-0.9 eV. Total electronic energy calculations based on density functional theory are used to develop a potential energy surface that allows for the full three-dimensional motion of the incident atom and the reconstruction of the bonding carbon atom, which must pucker out of the surface to form a stable bond. Classical methods are used to compute trapping cross sections as a function of incident energy. The C-H bond, once formed, rapidly dissociates without a mechanism to dissipate its excess energy. However, a number of long-lived trapping resonances exist, and for impact parameters below 1 A or so, several percent of the incident H atoms can remain trapped for 1 ps or more. This long-time trapping probability increases significantly when additional lattice degrees of freedom are added to carry energy away from the C-H stretch. Trapping can also increase with an increasing collision impact parameter, as H vibrations parallel to the surface become excited, leaving less energy in the C-H stretch. The trapping cross section at 1 ps reaches a maximum of 0.2 A2 for an H atom energy of 0.3 eV. Assuming that any atoms remaining trapped after 1 ps fully relax and stick, we estimate a lower bound for the sticking probability of H and D to be 0.024 and 0.050, respectively, about an order of magnitude below the experimental values.
研究了氢原子和氘原子在石墨(0001)表面的捕获和吸附情况,能量范围为0.1 - 0.9电子伏特。基于密度泛函理论的全电子能量计算用于构建势能面,该势能面考虑了入射原子的完整三维运动以及成键碳原子的重构,成键碳原子必须从表面凸起以形成稳定键。采用经典方法计算捕获截面随入射能量的变化。碳氢键一旦形成,会迅速解离,因为没有机制来耗散其多余能量。然而,存在一些长寿命的捕获共振,对于小于约1埃的碰撞参数,百分之几的入射氢原子可以被捕获1皮秒或更长时间。当添加额外的晶格自由度以带走碳氢键伸缩振动的能量时,这种长时间捕获概率会显著增加。捕获也会随着碰撞参数的增加而增加,因为平行于表面的氢振动被激发,使得碳氢键伸缩振动中剩余的能量减少。对于能量为0.3电子伏特的氢原子,1皮秒时的捕获截面最大达到0.2埃²。假设1皮秒后仍被捕获的任何原子完全弛豫并吸附,我们估计氢和氘的吸附概率下限分别为0.024和0.050,比实验值低约一个数量级。