Electronic structures of graphene edges and nanographene

被引:189
作者
Enoki, Toshiaki [1 ]
Kobayashi, Yousuke [1 ]
Fukui, Ken-Ichi [1 ]
机构
[1] Tokyo Inst Technol, Dept Chem, Meguro Ku, Tokyo 1528551, Japan
关键词
SCANNING-TUNNELING-MICROSCOPY; STACKED NANOGRAPHITE; CARBON NANOTUBES; MOIRE PATTERN; GRAPHITE; HYDROGEN; DIAMOND; STATES; ADSORPTION; MECHANISM;
D O I
10.1080/01442350701611991
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 electronic structure of nanographene having open edges around its circumference crucially depends on its edge shape. The circumference of an arbitrary shaped nanographene sheet is described in terms of a combination of zigzag and armchair edges. According to theoretical suggestions, nanographene has a non-bonding pi-electron state (edge state) localized in zigzag edges. This is reminiscent of the non-bonding pi-electron state appearing in non-Kekule-type aromatic molecules. The localized spins of the edge states can give rise to unconventional magnetism in nanographene such as carbon-only ferromagnetism, magnetic switching phenomenon, spin glass state, etc. Nanographene can be prepared by heat-induced conversion of nanodiamond particles. Nanographene ribbons are found by chance around step edges of graphite. The detailed structures of individual nanographene ribbons thus found can be characterized by resonance Raman experiments in which the graphitic G-band is used as a fingerprint. A nanographene sheet inclined along a direction is found to show an interference superperiodic pattern with a varying periodicity. The stacking of sheets also gives an interference effect on the dislocation network created by rhombohedral stacking faults. STM/STS investigations of well defined graphene edges which are hydrogen terminated in ultra-high vacuum condition confirm the presence of edge states around zigzag edges in good agreement with theoretical works. Armchair edges are generally long and defect free whereas zigzag edges tend to be short and defective. This suggests that the armchair edge is energetically more stable than the zigzag edge that has an edge state at the Fermi level. The feature of the edge state depends on the detailed geometry of the edge structures. The edge state in a short zigzag edge embedded between armchair edges becomes less localized due to state mixing with the adjacent armchair edges. The intersheet interaction modifies the spatial distribution of the local density of states of the edge states. The electrons in the edge state in a finite-length zigzag edge are subjected to an electron confinement effect. Nanographene sheets are tailored by cutting along the direction which is chosen intentionally for designing functionality. Well defined edges can be prepared by chemical modifications with foreign atoms or functional groups. A combination of an atomic-resolution electron lithography technique and chemical modifications of the nanographene edges is expected to give nanographene-based molecular devices in the development of nanotechnology. Recent works on the preparations structural and electronic characterizations of graphene edges and nanographene are reviewed.
引用
收藏
页码:609 / 645
页数:37
相关论文
共 85 条
  • [21] Novel electronic wave interference patterns in nanographene sheets
    Harigaya, K
    Kobayashi, Y
    Takai, K
    Ravier, J
    Enoki, T
    [J]. JOURNAL OF PHYSICS-CONDENSED MATTER, 2002, 14 (36) : L605 - L611
  • [22] Mechanism of magnetism in stacked nanographite with open shell electrons
    Harigaya, K
    Enoki, T
    [J]. CHEMICAL PHYSICS LETTERS, 2002, 351 (1-2) : 128 - 134
  • [23] 1ST-ORDER RAMAN-SPECTRUM OF DIAMOND AT HIGH-TEMPERATURES
    HERCHEN, H
    CAPPELLI, MA
    [J]. PHYSICAL REVIEW B, 1991, 43 (14): : 11740 - 11744
  • [24] X-RAY FORM-FACTORS AND THE ELECTRONIC-STRUCTURE OF GRAPHITE
    HOLZWARTH, NAW
    LOUIE, SG
    RABII, S
    [J]. PHYSICAL REVIEW B, 1982, 26 (10): : 5382 - 5390
  • [25] The first detection of a Clar's hydrocarbon, 2,6,10-tri-tert-butyltriangulene:: A ground-state triplet of non-Kekule polynuclear benzenoid hydrocarbon
    Inoue, J
    Fukui, K
    Kubo, T
    Nakazawa, S
    Sato, K
    Shiomi, D
    Morita, Y
    Yamamoto, K
    Takui, T
    Nakasuji, K
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2001, 123 (50) : 12702 - 12703
  • [26] Unique chemical reactivity of a graphene nanoribbon's zigzag edge
    Jiang, De-en
    Sumpter, Bobby G.
    Dai, Sheng
    [J]. JOURNAL OF CHEMICAL PHYSICS, 2007, 126 (13)
  • [27] Quantum spin Hall effect in graphene
    Kane, CL
    Mele, EJ
    [J]. PHYSICAL REVIEW LETTERS, 2005, 95 (22)
  • [28] From armchair to zigzag peripheries in nanographenes
    Kastler, Marcel
    Schmidt, Jochen
    Pisula, Wojciech
    Sebastiani, Daniel
    Muellen, Klaus
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (29) : 9526 - 9534
  • [29] Graphitic ribbons without hydrogen-termination: Electronic structures and stabilities
    Kawai, T
    Miyamoto, Y
    Sugino, O
    Koga, Y
    [J]. PHYSICAL REVIEW B, 2000, 62 (24) : R16349 - R16352
  • [30] Kelly B., 1981, Physics of Graphite