Momeni Mohammad Jafar, Chowdhury Chandra, Mousavi-Khoshdel Morteza
Industrial Electrochemical Research Laboratory, Department of Chemistry, Iran University of Science and Technology, Tehran, Iran.
Department of Spectroscopy, Indian Association for the Cultivation of Science Jadavpur, Kolkata 700032, India.
J Mol Graph Model. 2017 Nov;78:206-212. doi: 10.1016/j.jmgm.2017.10.016. Epub 2017 Oct 18.
In this contribution, we explore Li adsorption and diffusion on defective silicenes using first principles calculations. Defect formation energy (E) values showed that silicenes with 5105 and 5559 vacancy defects (Si-5559 and Si-5105) are likely to form during the fabrication process and E values are about one-third of graphenes. Calculation of Li adsorption energy indicated that Si-5559 and Si-5105 are better than pristine silicene for Li dispersion in the half-lithiated state. The diffusion barrier of Li on the surface of Si-5559 and Si-5105 and in the proximity of defected zone were obtained to be 0.24eV and 0.29eV, respectively. Diffusion barrier values show the easy motion of Li on these silicenes in comparison with defective graphenes. Ab-initio molecular dynamic (AIMD) simulations revealed that fully lithiated Si-5559 is not stable and can not accommodate lithium atoms. On the contrary, Si-5105 is stable and could store a certain amount of lithium atoms. The theoretical capacity of Si-5105 was calculated to be 664mAhg.
在本论文中,我们使用第一性原理计算方法研究了锂在缺陷硅烯上的吸附和扩散。缺陷形成能(E)值表明,在制备过程中,具有5105和5559空位缺陷的硅烯(Si-5559和Si-5105)很可能形成,且E值约为石墨烯的三分之一。锂吸附能的计算表明,在半锂化状态下,Si-5559和Si-5105比原始硅烯更有利于锂的分散。锂在Si-5559和Si-5105表面以及缺陷区域附近的扩散势垒分别为0.24eV和0.29eV。与缺陷石墨烯相比,扩散势垒值表明锂在这些硅烯上易于移动。从头算分子动力学(AIMD)模拟表明,完全锂化的Si-5559不稳定,无法容纳锂原子。相反,Si-5105是稳定的,能够存储一定数量的锂原子。计算得出Si-5105的理论容量为664mAhg。