首页> 外文会议>IEEE International Conference on Manipulation, Manufacturing and Measurement on the Nanoscale >Structure, Topology, Vibrational Frequency, Frontier Molecular Orbital Gaps, Stability, Charge, NICS, and Conductivity of Non-segregated Silicon Heterofullerenes: A DFT Approach
【24h】

Structure, Topology, Vibrational Frequency, Frontier Molecular Orbital Gaps, Stability, Charge, NICS, and Conductivity of Non-segregated Silicon Heterofullerenes: A DFT Approach

机译:结构,拓扑,振动频率,前沿分子轨道间隙,稳定性,电荷,NICS和非分离的硅杂富勒烯的电导率:DFT方法

获取原文

摘要

Silicon doped heterofullerenes of C20, I-VIII, are compared and contrasted by density functional theory (DFT) calculations. All studied species are known as true minima by vibrational frequency analysis. Heterofullerenes included alternating heteroatoms in equatorial position are introduced as stable highly-doped heterofullerenes due to lack of weak silicon-silicon single bonds. No deformation was seen for eight isolated heterofullerenes and all are the isolated-pentagon fullerenic cage. The species of II with the most negative NICS, as well as the highest band gap and binding energy is distinguished as the most thermodynamically, kinetically and chemically stable heterofullerene. The calculated structure of C18Si2 (II) with C1 symmetry is included two silicon atoms in equatorial position. Heterofullerenes especially VIII with the most negative charges on carbon atoms and the most positive charges on silicon heteroatoms (3 to 5.6 times in relation to other species), display the points with different charges that make big charge transfer on the surface of them. That make it as an excellent volunteer for hydrogen storage. These computational results promote chemists to have more experimental verifications.
机译:硅掺杂的C杂富勒烯 20 I-VIII通过密度泛函理论(DFT)计算进行比较和对比。通过振动频率分析,所有研究的物种都称为真极小值。由于缺乏弱的硅-硅单键,在赤道位置包含杂原子的杂富勒烯作为稳定的高掺杂杂富勒烯被引入。八个分离的杂富勒烯均未观察到变形,并且均为分离的五边形富勒烯笼。 NICS值最大,带隙和结合能最高的II类物质,在热力学,动力学和化学方面最稳定,是最富杂物性的。 C的计算结构 18 2 (II)具有C1对称性的赤道位置包含两个硅原子。杂富勒烯,尤其是在碳原子上带负电荷最多,在硅杂原子上带正电荷最多的八族化合物(相对于其他物种而言,是三到5.6倍),显示出带有不同电荷的点,这些电荷使它们表面上的电荷大量转移。这使其成为出色的储氢志愿者。这些计算结果促进了化学家进行更多的实验验证。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号