Noncovalent interactions between graphene sheets and in multishell (Hyper)Fullerenes

被引:234
|
作者
Grimme, Stefan [1 ]
Muck-Lichtenfeld, Christian [1 ]
Antony, Jens [1 ]
机构
[1] Univ Munster, Organ Chem Inst, D-48149 Munster, Germany
来源
JOURNAL OF PHYSICAL CHEMISTRY C | 2007年 / 111卷 / 30期
关键词
D O I
10.1021/jp0720791
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
The intershell and interlayer interaction ( complexation) energies of C-60 inside C-240 (C-60@ C240) and of graphene sheets are investigated by all-electron density functional theory ( DFT) using generalized gradient approximation (GGA) functionals and a previously developed empirical correction for dispersion ( van der Waals) effects (DFT-D method). Large Gaussian basis sets of polarized triple-quality that provide very small basis set superposition errors (< 10% of Delta E) are employed. The theoretical approach is first applied to graphene sheet model dimers of increasing size ( up to ( C216H36) (2)). The interaction energies are extrapolated to infinite lateral size of the sheets. The value of -66 meV/atom obtained for the interaction energy of two sheets supports the most recent experimental estimate for the exfoliation energy of graphite (-52 ( 5 meV/atom). The interlayer equilibrium distance ( 334 +/- 3 pm) is also obtained accurately. The binding energy of C-60 inside C-240 is calculated to be -184 kcal mol(-1) which is about 89% of the corresponding value of a similarly sized graphene sheet model dimer. Geometric relaxation of the monomers upon complexation and nonadditivity ( multilayer) effects are found to be negligible. The various contributions to the binding ( Pauli exchange repulsion, electrostatic and induction, dispersion) are comparatively analyzed for the sheets and for C-60@ C-240. The binding in both systems is that of typical van der Waals complexes; that is, the dispersion contributions play a major role as also indicated by the fact that conventional GGA functionals yield purely repulsive interactions. The plots of the electrostatic potential of the fragments often used as tools for analysis lead here to qualitatively wrong conclusions. The relatively large binding energy of C60@ C240 can be explained by favorable dispersion, induction, and charge-transfer interaction contributions but reveals no special role of the pi orbitals. According to population analyses, about 0.67 electrons are transferred from the inner to the outer cage in C-60@ C-240 upon complex formation.
引用
收藏
页码:11199 / 11207
页数:9
相关论文
共 50 条
  • [21] Modelling interactions between a PBB and fullerenes
    Thamwattana, Ngamta
    Thien Tran-Duc
    Baowan, Duangkamon
    JOURNAL OF MATHEMATICAL CHEMISTRY, 2013, 51 (03) : 1001 - 1022
  • [22] Supramolecular interactions between fullerenes and porphyrins
    Wang, YB
    Lin, ZY
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (20) : 6072 - 6073
  • [23] Interactions between the molecules of different fullerenes
    Zubov, VI
    FULLERENES NANOTUBES AND CARBON NANOSTRUCTURES, 2004, 12 (1-2) : 499 - 504
  • [24] Supramolecular interactions between fullerenes and porphyrins
    Lin, Z. (chzlin@ust.hk), 1600, American Chemical Society (125):
  • [25] Modelling interactions between a PBB and fullerenes
    Ngamta Thamwattana
    Thien Tran-Duc
    Duangkamon Baowan
    Journal of Mathematical Chemistry, 2013, 51 : 1001 - 1022
  • [26] Noncovalent interactions of free-base phthalocyanine with elongated fullerenes as carbon nanotube models
    Eduardo Chávez-Colorado
    Vladimir A. Basiuk
    Structural Chemistry, 2017, 28 : 1765 - 1773
  • [27] Noncovalent interactions of free-base phthalocyanine with elongated fullerenes as carbon nanotube models
    Chavez-Colorado, Eduardo
    Basiuk, Vladimir A.
    STRUCTURAL CHEMISTRY, 2017, 28 (06) : 1765 - 1773
  • [28] Anchoring of Gold Nanoparticles on Graphene Oxide and Noncovalent Interactions with Porphyrinoids
    Andrade, Suzana M.
    Bueno-Alejo, Carlos J.
    Serra, Vanda V.
    Rodrigues, Joao M. M.
    Neves, Maria G. P. M. S.
    Viana, Ana S.
    Costa, Silvia M. B.
    CHEMNANOMAT, 2015, 1 (07): : 502 - 510
  • [29] Noncovalent interactions of pyrene groups with graphene in dispersions and polymer composites
    Green, Micah
    Hedden, Ronald
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 250
  • [30] Noncovalent interactions between benzochalcogenadiazoles and nitrogen bases
    Zhang, Lili
    Zeng, Yanli
    Li, Xiaoyan
    Zhang, Xueying
    JOURNAL OF MOLECULAR MODELING, 2022, 28 (09)