| Literature DB >> 22587725 |
Soo-Hyon Phark1, Jérôme Borme, Augusto León Vanegas, Marco Corbetta, Dirk Sander, Jürgen Kirschner.
Abstract
Scanning tunneling spectroscopy (STS) was used to measure local differential conductance (dI/dV) spectra on nanometer-size graphene islands on an Ir(111) surface. Energy resolved dI/dV maps clearly show a spatial modulation, which we ascribe to a modulated local density of states due to quantum confinement. STS near graphene edges indicates a position dependence of the dI/dV signals, which suggests a reduced density of states near the edges of graphene islands on Ir(111).Entities:
Year: 2012 PMID: 22587725 PMCID: PMC3414757 DOI: 10.1186/1556-276X-7-255
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1STS on a graphene nanoisland on Ir(111). (a) A 70 × 70 nm2 CC-STM image of G islands on Ir(111) (V = −0.05 V, Iset = 1 nA). The inset is a CC-STM image of a zoom-in of the G lattice with an illustration of the hexagonal C ring (red circles) and lattice vectors (black arrows) (V = 0.05 V, Iset = 1 nA). Crystallographic directions of the Ir substrate are denoted at the bottom-left side, as deduced from atomically resolved STM images of the substrate. (b) The G island indicated by the dashed circle in (a). (c) It gives the line profile along the long axis of the island in (b). (d,e,f) The dI/dV maps of the island in (b), measured at V denoted at the bottom-left corner of each image. (g) STS spectra measured at the positions a to c in (b).
Figure 2STS near an edge of graphene nanoisland. (a) Atomic resolution CC-STM image of top-left side of the island in Figure 1b (V = −0.05 V, Iset = 1 nA). The hexagons denote the honeycomb lattice structure of G. (b) STS spectra measured at nine positions along the line AB across the G edge towards the Ir region. The inset shows the dI/dV signal height at V = −1.0 V as a function of distance from the edge. The dI/dV signal decreases from the position of approximately 1.0 nm inside the island towards the edge.