Sangolkar Akanksha Ashok, Agrawal Rubi, Pawar Ravinder
Department of Chemistry, National Institute of Technology Warangal (NITW), Warangal, Telangana-506004, India.
Chemphyschem. 2022 Feb 4;23(3):e202100658. doi: 10.1002/cphc.202100658. Epub 2021 Dec 16.
The information concerning dissociative adsorption of H S on Li surface is inadequate and the mechanistic insight for its complete dissociation is yet to be explored. The present investigation aims to scrutinize the dissociative adsorption of H S on Li(110) surface using density functional theory calculations. The climbing image nudged elastic band calculation was employed to unveil the relative energy profiles for S-H dissociation. To elucidate the components of interaction energy responsible for stabilizing the adsorbed moieties on the surface, periodic energy decomposition analysis was performed. A Car-Parrinello molecular dynamics (CPMD) simulation was performed to understand the dynamic behaviour of H S on Li(110). Results vividly demonstrates: (i) partially dissociated product with perpendicular S-H is comparatively stable than the parallel SH, (ii) completely dissociated moieties H/H/S are the most stable among all, (iii) dissociation of first S-H is barrierless and the second S-H dissociation is a low energy barrier reaction, (iv) complete dissociation of H S occurs in a stepwise manner, (v) orbital and electrostatic contributions of the interaction energy plays a vital role in stabilizing the dissociated moieties, and (vi) stepwise dissociation of H S was further reinforced by CPMD.
关于硫化氢在锂表面的解离吸附信息不足,其完全解离的机理仍有待探索。本研究旨在利用密度泛函理论计算来仔细研究硫化氢在Li(110)表面的解离吸附。采用爬山图像推挤弹性带计算来揭示S-H解离的相对能量分布。为了阐明负责稳定表面吸附部分的相互作用能的组成部分,进行了周期性能量分解分析。进行了Car-Parrinello分子动力学(CPMD)模拟,以了解硫化氢在Li(110)上的动态行为。结果清楚地表明:(i)具有垂直S-H的部分解离产物比平行的SH相对更稳定,(ii)完全解离的部分H/H/S在所有产物中最稳定,(iii)第一个S-H的解离无势垒,第二个S-H的解离是低能垒反应,(iv)硫化氢的完全解离以逐步方式发生,(v)相互作用能的轨道和静电贡献在稳定解离部分中起着至关重要的作用,以及(vi)CPMD进一步加强了硫化氢的逐步解离。