Structure and electronic properties of graphite nanoparticles

被引:225
作者
Andersson, OE
Prasad, BLV
Sato, H
Enoki, T
Hishiyama, Y
Kaburagi, Y
Yoshikawa, M
Bandow, S
机构
[1] Tokyo Inst Technol, Dept Chem, Meguro Ku, Tokyo 1528551, Japan
[2] Musashi Inst Technol, Fac Engn, Setagaya Ku, Tokyo 158, Japan
[3] Tokyo Inst Technol, Dept Control & Syst Engn, Meguro Ku, Tokyo 1528551, Japan
[4] Meijo Univ, Dept Phys, Japan Sci & Technol Corp, Tempaku Ku, Nagoya, Aichi 468, Japan
来源
PHYSICAL REVIEW B | 1998年 / 58卷 / 24期
关键词
D O I
10.1103/PhysRevB.58.16387
中图分类号
T [工业技术];
学科分类号
08 [工学];
摘要
We have investigated the structure and electronic properties of graphite nanoparticles prepared by heat treating diamond nanoparticles. The prepared nanographite forms a polyhedron with a hollow in its inside, whose faces comprise a stacking of 3-6 planar graphene sheets with an in-plane size of 7-8 nm and an intersheet distance of 0.353 nm. The large intersheet distance suggests a considerably large reduction in interlayer interaction compared to the case of bulk regular graphite. Electron-spin-resonance and magnetic-susceptibility measurements show that there is a considerable enhancement in the density of states at the Fermi energy, indicating the presence of an additional band superimposed upon the bonding π and the antibonding (Formula presented) bands around the Fermi energy. Taking into consideration the discontinuous shape at an edge line formed by crossing adjacent graphene sheets, graphene sheets in a nanographite particle are considered to have open π-bond edges. On the basis of the theoretical suggestion that nonbonding π orbitals give edge-inherited surface states depending on the shape of the graphene edge, this is suggestive of the contribution of the edge states to the electronic structure of nanosized graphene having open π-bond edges. © 1998 The American Physical Society.
引用
收藏
页码:16387 / 16395
页数:9
相关论文
共 32 条
[1]
CARBON ONIONS PRODUCED BY HEAT-TREATMENT OF CARBON SOOT AND THEIR RELATION TO THE 217.5 NM INTERSTELLAR ABSORPTION FEATURE [J].
DEHEER, WA ;
UGARTE, D .
CHEMICAL PHYSICS LETTERS, 1993, 207 (4-6) :480-486
[2]
Dresselhaus M. S., 1996, SCI FULLERENES CARBO
[3]
STUDY OF TRANSFORMATION OF DIAMOND TO GRAPHITE [J].
EVANS, T ;
JAMES, PF .
PROCEEDINGS OF THE ROYAL SOCIETY OF LONDON SERIES A-MATHEMATICAL AND PHYSICAL SCIENCES, 1964, 277 (1368) :260-+
[4]
Peculiar localized state at zigzag graphite edge [J].
Fujita, M ;
Wakabayashi, K ;
Nakada, K ;
Kusakabe, K .
JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN, 1996, 65 (07) :1920-1923
[5]
Lattice distortion in nanographite ribbons [J].
Fujita, M ;
Igami, M ;
Nakada, K .
JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN, 1997, 66 (07) :1864-1867
[6]
DIAMONDS IN DETONATION SOOT [J].
GREINER, NR ;
PHILLIPS, DS ;
JOHNSON, JD ;
VOLK, F .
NATURE, 1988, 333 (6172) :440-442
[7]
Phonon dispersion of nano-graphite ribbons [J].
Igami, M ;
Fujita, M ;
Mizuno, S .
APPLIED SURFACE SCIENCE, 1998, 130 :870-875
[8]
IGAMI M, 1998, THESIS U TSUKUBA
[9]
KELLY BT, 1981, PHYSICS GRAPHITE
[10]
Atomic and electronic structure of diamond(111) surfaces .1. Reconstruction and hydrogen-induced de-reconstruction of the one dangling-bond surface [J].
Kern, G ;
Hafner, J ;
Kresse, G .
SURFACE SCIENCE, 1996, 366 (03) :445-463