期刊文献+

Theoretical Studies on Structures, Stabilities, NMR Spectra and Designing Methods of Dihedral Fullerenes of C3 Series 被引量:1

Theoretical Studies on Structures, Stabilities, NMR Spectra and Designing Methods of Dihedral Fullerenes of C3 Series
原文传递
导出
摘要 Using bowl shaped carbon intermediates to construct dihedral fullerenes is an advisable method. Assu- ming that cap shaped C21 extends the size through building pentagons and hexagons at the U and V clefts of the brims, a series of homologous carbon intermediates was generated, in which most of the members have been unknown up to now. The joins between these homologous intermediates gave the C3 dihedral series under the restriction of C3 sym- metrical axis. The investigations point out that the stabilities of these fullerenes not only relate to the shapes of cages and the co-planarities of polygons, but also associate with the equalizations of bond lengths and the pentagonal dis- tributions. The stabilities reveal that the pentagonal distribution in cages is not negligible to the Jr delocalization, be- sides the co-planarities of hexagons and pentagons. Analyzing the possible Stone-Wales(SW) rearrangements in those fullerenes with dehydrogenated pyracyclene units(DPUs) can help us to find out the highly stable isomers. Based on the geometrical optimizations, the calculations provided the theoretical chemical shifts of unknown fullerenes and the data reconfirmed the existence of members C78 and C84. The symmetry adaptation analyses for the frontier orbitals support the formative mechanism of consecutive pentagonal and hexagonal fusions, but the simulated routes are more complicated than the pentagon road(PR) mechanism, which include not only C2 but also C3 additive reactions. Using bowl shaped carbon intermediates to construct dihedral fullerenes is an advisable method. Assu- ming that cap shaped C21 extends the size through building pentagons and hexagons at the U and V clefts of the brims, a series of homologous carbon intermediates was generated, in which most of the members have been unknown up to now. The joins between these homologous intermediates gave the C3 dihedral series under the restriction of C3 sym- metrical axis. The investigations point out that the stabilities of these fullerenes not only relate to the shapes of cages and the co-planarities of polygons, but also associate with the equalizations of bond lengths and the pentagonal dis- tributions. The stabilities reveal that the pentagonal distribution in cages is not negligible to the Jr delocalization, be- sides the co-planarities of hexagons and pentagons. Analyzing the possible Stone-Wales(SW) rearrangements in those fullerenes with dehydrogenated pyracyclene units(DPUs) can help us to find out the highly stable isomers. Based on the geometrical optimizations, the calculations provided the theoretical chemical shifts of unknown fullerenes and the data reconfirmed the existence of members C78 and C84. The symmetry adaptation analyses for the frontier orbitals support the formative mechanism of consecutive pentagonal and hexagonal fusions, but the simulated routes are more complicated than the pentagon road(PR) mechanism, which include not only C2 but also C3 additive reactions.
作者 LI Ping
机构地区 College of Chemistry
出处 《Chemical Research in Chinese Universities》 SCIE CAS CSCD 2014年第6期1032-1043,共12页 高等学校化学研究(英文版)
基金 Supported by the National Natural Science Foundation of China(No.21373140).
关键词 Dihedral fullerene Curvature Distortion Pentagon and hexagon Chemical shift Stone-Wales(SW) ar-rangement Density functional theory Dihedral fullerene Curvature Distortion Pentagon and hexagon Chemical shift Stone-Wales(SW) ar-rangement Density functional theory
  • 相关文献

参考文献36

  • 1Kroto H. W., Heath J. R., O'Brien S. C., Curl R. F., Smalley R. E., Nature, 1985, 318, 162.
  • 2Kratschmer W., Lamb L. D., Fostiropoulos K., Huffman D. R., Nature, 1990, 347, 354.
  • 3Li P., Science China Chemistry B, 2012, 55, 1856.
  • 4Smalley R. E.,Acc. Chem. Res., 1992, 25, 98.
  • 5Chen Z. F.. Thiel W.. Chem. Phys. Lett., 2003, 367, 15.
  • 6Shao N., Gao Y., Zeng X. C., J. Phys. Chem. C, 2007, 111, 17671.
  • 7Cai W., Shao L. N., Shao X. G., Guo Q. X., J. Chem. Phys., 2005, 122, 184318-1.
  • 8Diedcrich F., Whetten R, L., Thilgen C. Ettl R., Chao I.. Alvarez M. M., Science, 1991, 254, 1768.
  • 9Kikuchi K., Nakahara N., Wakabayashi r., Suzuki S., Shiromaru H., Miyake Y., Saito K., lkemoto 1., Kainosho M., Achiba Y., Nature, 1992 357. 142.
  • 10Taylor R., Langley G. J., Dennis T. S., Kroto H. W., Walton D. R. M., J. Chem. Soc., Chem. Commun., 1992, 1043.

同被引文献5

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部