Theoretical study on the sequential hydroxylation of C82 fullerene based on Fukui function

被引:14
|
作者
Rodriguez-Zavala, J. G. [1 ]
Tenorio, F. J. [1 ]
Samaniego, Cuauhtemoc [1 ]
Mendez-Barrientos, C. I. [1 ]
Pena-Lecona, F. G. [1 ]
Munoz-Maciel, J. [1 ]
Flores-Moreno, R. [2 ]
机构
[1] Univ Guadalajara, Ctr Univ Los Lagos, Dept Ciencias Exactas & Tecnol, Guadalajara 47460, Jalisco, Mexico
[2] Univ Guadalajara, Ctr Univ Ciencias Exactas & Ingn, Dept Quim, Guadalajara 44430, Jalisco, Mexico
关键词
fullerene; hydroxylation; carbon system; MRI CONTRAST AGENTS; AIR-WATER-INTERFACE; ELECTRONIC-PROPERTIES; CHEMICAL-REACTIVITY; POLYHYDROXYLATED METALLOFULLERENE; FRONTIER ORBITALS; DENSITY; C-60; PERSPECTIVES; RELAXIVITY;
D O I
10.1080/00268976.2011.591743
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In the present work semi-empirical PM3 method and ab initio density-functional theory calculations were performed in carbon systems. The condensed Fukui function was calculated and HOMO-LUMO were visualised in order to study the sequence of hydroxylation of two isomers of C-82 fullerene for the low coverage regime, with the formula C-82(OH)(x) where x = 0 - 12. It was found that there was a formation of dangling bonds on structures with an odd number of hydroxyl groups on the fullerene surface, which suggests an enhanced reactivity of these molecules. Nevertheless, the coverings with an even number of groups tend to the reconstruction of pi bonds, obtaining less reactive molecular structures. With the adsorption of the first group, a narrow HOMO-LUMO gap (1.28 eV) is observed in comparison with the C-82(OH)(2) system (1.70 eV), as is found in similar systems, such as C-60 fullerenol [E. E. Fileti et al., Nanotechnology 19, 365703 (2008); J.G. Rodriguez-Zavala and R. A. Guirado-Lopez, Phys. Rev. B 69, 075411 (2004)]. Through an analysis of the electronic structure to these coverings, a splitting of electronic energy levels in the structure with one hydroxyl group is observed, which could be one of the factors that causes the narrowing of the energy gap in this structure. On the other hand, with a coverage of 12 hydroxyl groups, the formation of an amphiphilic molecule, where the location of groups in one side of the C-82 surface provides an hydrophilic character, is observed, while the uncovered part has an hydrophobic character. This could be important in the formation of Langmuir monolayers. Finally, it is shown that the precise distribution of the OH groups on the fullerene surface plays a crucial role in the electronic structure of the polyhydroxylated fullerenes.
引用
收藏
页码:1771 / 1783
页数:13
相关论文
共 50 条
  • [31] ORIENTATIONAL DYNAMICS OF THE SC3 TRIMER IN C82 - AN EPR STUDY
    VANLOOSDRECHT, PHM
    JOHNSON, RD
    DEVRIES, MS
    KIANG, CH
    BETHUNE, DS
    DORN, HC
    BURBANK, P
    STEVENSON, S
    PHYSICAL REVIEW LETTERS, 1994, 73 (25) : 3415 - 3418
  • [32] Skeletal Transformation of Isolated Pentagon Rule (IPR) Fullerene C82 into Non-IPR C82Cl28 with Notably Low Activation Barriers
    Ioffe, Ilya N.
    Mazaleva, Olga N.
    Sidorov, Lev N.
    Yang, Shangfeng
    Wei, Tao
    Kemnitz, Erhard
    Troyanov, Sergey I.
    INORGANIC CHEMISTRY, 2012, 51 (21) : 11226 - 11228
  • [33] Energy stabilization of the s-symmetry superatom molecular orbital by endohedral doping of C82 fullerene with a lanthanum atom
    Feng, Min
    Shi, Yongliang
    Lin, Chungwei
    Zhao, Jin
    Liu, Fupin
    Yang, Shangfeng
    Petek, Hrvoje
    PHYSICAL REVIEW B, 2013, 88 (07)
  • [34] In situ ESR-UV/VIS/NIR spectroelectrochemistry of an empty fullerene anion and cation:: The C82:3 isomer
    Zalibera, Michal
    Rapta, Peter
    Dunsch, Lothar
    ELECTROCHEMISTRY COMMUNICATIONS, 2007, 9 (12) : 2843 - 2847
  • [35] Structural Chemistry of Pentagon-Fused C82 Fullerene Derivatives #39173C82(CF3)14,16,18 and #39173C82Cl28
    Brotsman, Victor A.
    Tamm, Nadezhda B.
    Troyanov, Sergey I.
    INORGANIC CHEMISTRY, 2023, 62 (05) : 2425 - 2429
  • [36] Ultraviolet Photodetectors Based on Dimetallofullerene Lu2@Cs(6)-C82 Nanorods
    Xu, Ting
    Yin, Hong
    Yu, Pengwei
    He, Zhimin
    Chen, Ning
    Shen, Wangqiang
    Zhu, Mingqiang
    Akasaka, Takeshi
    Lu, Xing
    ACS APPLIED NANO MATERIALS, 2022, 5 (01) : 1683 - 1689
  • [37] First principles study of small cobalt clusters encapsulated in C60 and C82 spherical nanocages
    Javan, M. Bezi
    Tajabor, N.
    Rezaee-Roknabadi, M.
    Behdani, M.
    APPLIED SURFACE SCIENCE, 2011, 257 (17) : 7586 - 7591
  • [38] Isolation and spectroscopic study of a series of mono- and dierbium endohedral C82 and C84 metallofullerenes
    Tagmatarchis, N
    Aslanis, E
    Shinohara, H
    Prassides, K
    JOURNAL OF PHYSICAL CHEMISTRY B, 2000, 104 (47): : 11010 - 11012
  • [39] THEORETICAL-STUDY OF THE LANTHANIDE FULLERENE CEC82 - COMPARISON WITH SCC82, YC82 AND LAC82
    NAGASE, S
    KOBAYASHI, K
    CHEMICAL PHYSICS LETTERS, 1994, 228 (1-3) : 106 - 110
  • [40] A benchmark study of DFT methods on the electronic properties of lanthanofullerenes: a case study of Ce@C2v(9)-C82 anion
    Wu, Jingyi
    Chai, Zhifang
    Wang, Dongqi
    RSC ADVANCES, 2013, 3 (48) : 26252 - 26260