175 research outputs found
Edge state on hydrogen-terminated graphite edges investigated by scanning tunneling microscopy
The edge states that emerge at hydrogen-terminated zigzag edges embedded in
dominant armchair edges of graphite are carefully investigated by
ultrahigh-vacuum scanning tunneling microscopy (STM) measurements. The edge
states at the zigzag edges have different spatial distributions dependent on
the - or -site edge carbon atoms. In the case that the defects
consist of a short zigzag (or a short Klein) edge, the edge state is present
also near the defects. The amplitude of the edge state distributing around the
defects in an armchair edge often has a prominent hump in a direction
determined by detailed local atomic structure of the edge. The tight binding
calculation based on the atomic arrangements observed by STM reproduces the
observed spatial distributions of the local density of states.Comment: 9 pages, 11 figures, accepted for Physical Review
Observation of zigzag and armchair edges of graphite using scanning tunneling microscopy and spectroscopy
The presence of structure-dependent edge states of graphite is revealed by
both ambient- and ultra-highvacuum- (UHV) scanning tunneling microscopy (STM) /
scanning tunneling spectroscopy (STS) observations. On a hydrogenated zigzag
(armchair) edge, bright spots are (are not) observed together with (SQRT(3) by
SQRT(3))R30 superlattice near the Fermi level (V_S = −30 mV for a peak of
the local density of states (LDOS)) under UHV, demonstrating that a zigzag edge
is responsible for the edge states, although there is no appreciable difference
between as-prepared zigzag and armchair edges in air. Even in hydrogenated
armchair edge, however, bright spots are observed at defect points, at which
partial zigzag edges are created in the armchair edge.Comment: 4 pages, 4 figures, contents for experimental/theoretical reseachers,
accepted as an issue of Physical Review B (PRB
STM observation of the quantum interference effect in finite-sized graphite
Superperiodic patterns were observed by STM on two kinds of finite-sized
graphene sheets. One is nanographene sheets inclined from a highly oriented
pyrolitic graphite (HOPG) substrate and the other is several-layer-thick
graphene sheets with dislocation-network structures against a HOPG substrate.
As for the former, the in-plane periodicity increased gradually in the
direction of inclination, and it is easily changed by attachment of a
nanographite flake on the nanographene sheets. The oscillation pattern can be
explained by the interference of electron waves confined in the inclined
nanographene sheets. As for the latter, patterns and their corrugation
amplitudes depended on the bias voltage and on the terrace height from the HOPG
substrate. The interference effect by the perturbed and unperturbed waves in
the overlayer is responsible for the patterns whose local density of states
varies in space.Comment: 11 pages; 2 figures; accepted for publication in J. Phys. Chem.
Solids; ISIC1
Novel electronic wave interference patterns in nanographene sheets
Superperiodic patterns with a long distance in a nanographene sheet observed
by STM are discussed in terms of the interference of electronic wave functions.
The period and the amplitude of the oscillations decrease spatially in one
direction. We explain the superperiodic patterns with a static linear potential
theoretically. In the k-p model, the oscillation period decreases, and agrees
with experiments. The spatial difference of the static potential is estimated
as 1.3 eV for 200 nm in distance, and this value seems to be reasonable in
order that the potential difference remains against perturbations, for example,
by phonon fluctuations and impurity scatterings. It turns out that the
long-distance oscillations come from the band structure of the two-dimensional
graphene sheet.Comment: Published as a LETTER in J. Phys.: Condens. Matter; 8 pages; 6
figures; Online version at
http://www.iop.org/EJ/S/3/1256/0hJAmc5sCL6d.7sOO.BtLw/abstract/0953-8984/14/3
6/10
Theoretical study on novel electronic properties in nanographite materials
Antiferromagnetism in stacked nanographite is investigated with using the
Hubbard-type model. We find that the open shell electronic structure can be an
origin of the decreasing magnetic moment with the decrease of the
inter-graphene distance, as experiments on adsorption of molecules suggest.
Next, possible charge-separated states are considered using the extended
Hubbard model with nearest-neighbor interactions. The charge-polarized state
could appear, when a static electric field is present in the graphene plane for
example. Finally, superperiodic patterns with a long distance in a nanographene
sheet observed by STM are discussed in terms of the interference of electronic
wave functions with a static linear potential theoretically. In the analysis by
the k-p model, the oscillation period decreases spatially in agreement with
experiments.Comment: 8 pages; 6 figures; accepted for publication in J. Phys. Chem.
Solids; related Web site: http://staff.aist.go.jp/k.harigaya/index_E.htm
BATTLE: Genetically Engineered Strategies for Split-Tunable Allocation of Multiple Transgenes in the Nervous System
Elucidating fine architectures and functions of cellular and synaptic connections requires development of new flexible methods. Here, we created a concept called the “battle of transgenes,” based on which we generated strategies using genetically engineered battles of multiple recombinases. The strategies enabled split-tunable allocation of multiple transgenes. We demonstrated the versatility of these strategies and technologies in inducing strong and multi-sparse allocations of multiple transgenes. Furthermore, the combination of our transgenic strategy and expansion microscopy enabled three-dimensional high-resolution imaging of whole synaptic structures in the hippocampus with simultaneous visualizations of endogenous synaptic proteins. These strategies and technologies based on the battle of genes may accelerate the analysis of whole synaptic and cellular connections in diverse life science fields
BATTLE: Genetically Engineered Strategies for Split-Tunable Allocation of Multiple Transgenes in the Nervous System
Elucidating fine architectures and functions of cellular and synaptic connections requires development of new flexible methods. Here, we created a concept called the “battle of transgenes,” based on which we generated strategies using genetically engineered battles of multiple recombinases. The strategies enabled split-tunable allocation of multiple transgenes. We demonstrated the versatility of these strategies and technologies in inducing strong and multi-sparse allocations of multiple transgenes. Furthermore, the combination of our transgenic strategy and expansion microscopy enabled three-dimensional high-resolution imaging of whole synaptic structures in the hippocampus with simultaneous visualizations of endogenous synaptic proteins. These strategies and technologies based on the battle of genes may accelerate the analysis of whole synaptic and cellular connections in diverse life science fields
- …