Bowl-shaped carbocations: easy to produce, hard to reduce

被引:23
|
作者
Dubceac, Cristina [1 ]
Zabula, Alexander V. [1 ]
Filatov, Alexander S. [1 ]
Rossi, Fulvio [2 ]
Zanello, Piero [2 ]
Petrukhina, Marina A. [1 ]
机构
[1] SUNY Albany, Albany, NY 12222 USA
[2] Univ Siena, Dipartimento Chim, I-53100 Siena, Italy
基金
美国国家科学基金会;
关键词
buckybowls; carbocations; corannulene; electrochemistry; X-ray study; GEODESIC POLYARENES; CATION; C-60; SUBSTITUTION; FULLERENES;
D O I
10.1002/poc.2900
中图分类号
O62 [有机化学];
学科分类号
070303 ; 081704 ;
摘要
Stable nonplanar polyaromatic carbocation, [C20H10CH2Cl]+ (1) having the chloromethyl group covalently bound to the hub site of corannulene was prepared by reaction of C20H10 with CH2Cl2 and GaCl3 in the presence of SnCl2. The X-ray diffraction study of the resulting salt, [1]center dot[(SnCl)(GaCl4)2], revealed the presence of two rotational isomers for 1 in the crystal lattice. In the solid state, a complex polymeric inorganic anion of the overall composition [(Sn2Cl2)center dot(GaCl4)4]8 is formed with the cationic p-bowls being attached to its backbone. Both X-ray and nuclear magnetic resonance spectroscopic data of 1 indicate the sp3 hybridization of the C-atom of corannulene at the attachment point. An electrochemical investigation of 1 and the series of related corannulene cations, [C20H10R]+ (R?=?CHxCl3x (x?=?03) and CH2CH2Cl), was carried out to elucidate the electronic consequences triggered by the above changes. This study revealed that the surface decoration of corannulene core makes the reduction of the resulting [C20H10R]+ species significantly more difficult (by about 0.3?V) with respect to the parent bowl. To evaluate the consequences of the observed one-electron reduction and conceivable but not seen second-electron reduction on the corannulene core, theoretical calculations at the density functional theory level have been carried out. Copyright (C) 2012 John Wiley & Sons, Ltd.
引用
收藏
页码:553 / 558
页数:6
相关论文
共 50 条
  • [31] Bowl-shaped hydrocarbons related to C60
    Schulman, JM
    Disch, RL
    JOURNAL OF COMPUTATIONAL CHEMISTRY, 1998, 19 (02) : 189 - 194
  • [32] Stereoselective synthesis of enantiomerically pure bowl-shaped hydroxytribenzotriquinacenes
    Rommelmann, Philipp
    Nachtigall, Beate
    Guntelmann, Tim
    Groeger, Harald
    Kuck, Dietmar
    ORGANIC & BIOMOLECULAR CHEMISTRY, 2018, 16 (31) : 5635 - 5642
  • [33] A novel chemical synthesis of bowl-shaped polypyrrole particles
    Qiao, Yongsheng
    Shen, Lazhen
    Wu, Meixia
    Guo, Yong
    Meng, Shuangming
    MATERIALS LETTERS, 2014, 126 : 185 - 188
  • [34] NEW BOWL-SHAPED COLUMNAR LIQUID-CRYSTALS
    COMETTI, G
    DALCANALE, E
    DUVOSEL, A
    LEVELUT, AM
    JOURNAL OF THE CHEMICAL SOCIETY-CHEMICAL COMMUNICATIONS, 1990, (02) : 163 - 165
  • [35] Figuration of bowl-shaped π-conjugated molecules: properties and functions
    Saito, Masaichi
    Shinokubo, Hiroshi
    Sakurai, Hidehiro
    MATERIALS CHEMISTRY FRONTIERS, 2018, 2 (04) : 635 - 661
  • [36] Whispering gallery modes in bowl-shaped stilbene microresonators
    Kameda, Akihiro
    Tajima, Hiroyuki
    Yamada, Jun-ichi
    Komino, Takeshi
    JOURNAL OF LUMINESCENCE, 2022, 243
  • [37] Bowl-Shaped Hydrocarbons Related to C60
    Schulman, J. M.
    Disch, R. L.
    Journal of Computational Chemistry, 19 (02):
  • [38] The azaacepentalenide anion: A new aromatic, bowl-shaped heterocycle
    Mascal, Mark
    Bertran, Jordi Ceron
    Journal of the American Chemical Society, 2005, 127 (05): : 1352 - 1353
  • [39] Bowl-shaped Troger's bases and their recognition properties
    Mosca, Lorenzo
    Cejka, Jan
    Dolensky, Bohumil
    Havlik, Martin
    Jakubek, Milan
    Kaplanek, Robert
    Kral, Vladimir
    Anzenbacher, Pavel, Jr.
    CHEMICAL COMMUNICATIONS, 2016, 52 (70) : 10664 - 10667
  • [40] CO2-responsive bowl-shaped polymersomes
    Che, Hailong
    Yuan, Jinying
    MACROMOLECULAR RESEARCH, 2017, 25 (06) : 635 - 639