| Literature DB >> 32001766 |
Daiki Ootsuki1, Kenjiro Kodera2, Daiya Shimonaka2, Masashi Arita3, Hirofumi Namatame3, Masaki Taniguchi3, Makoto Minohara4, Koji Horiba4, Hiroshi Kumigashira4, Eiji Ikenaga5, Akira Yasui5, Yoshiharu Uchimoto2, Satoshi Toyoda6, Masahito Morita7, Katsutoshi Fukuda7, Teppei Yoshida8.
Abstract
We investigated the electronic structures of mono- and few-layered Ru nanosheets (N layers (L) with N = 1, ~6, and ~9) on Si substrate by ultra-violet and x-ray photoemission spectroscopies. The spectral density of states (DOS) near EF of ~6 L and 1 L is suppressed as it approaches EF in contrast to that of ~9 L, which is consistent with the Ru 3 d core-level shift indicating the reduction of the metallic conductivity. A power law g(ε) ∝ |ε - εF|α well reproduces the observed spectral DOS of ~6 L and 1 L. The evolution of the power factor α suggests that the transition from the metallic state of ~9 L to the 2-dimensional insulating state with the soft Coulomb gap of 1 L through the disordered 3-dimensional metallic state of ~6 L.Entities:
Year: 2020 PMID: 32001766 PMCID: PMC6992751 DOI: 10.1038/s41598-020-58057-9
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematics and AFM images of Ru nanosheets (1, 6, and 9 L).
Figure 2Valence-band photoemission spectra of (a) RuO2 and (b) Ru nanosheets (1, ~6, and ~9 L) taken at hv = 7940 eV. The dotted curve shows the spectrum of Si substrate without RuO2 and Ru nanosheets. (c) The valence band spectrum of the Ru nanosheets (~9 L) compared with the band structure calculation of bulk Ru metal. The data were collected at T = 300 K without surface treatment because of the large probing depth of hard x-ray. The spectra were normalized to the intensity around −8 eV.
Figure 3Near- EF photoemission spectra of Ru nanosheets (1, ~6, and ~9 L) taken at hv = 20 eV (a) before annealing and (b) after annealing. Inset shows an enlarged view close to EF. The data were obtained at T = 28 K.
Figure 4(a) Ru 3 d core-level spectra and (b) its enlarged plot of Ru nanosheets (1, ~6, and ~9 L). The photoemission intensity is normalized by the Ru 3 d5/2 peak intensity. (c) Near-EF spectra of Ru nanosheets (1, ~6, and ~9 L). The spectra were taken at hv = 800 eV and T = 15 K. The samples were annealed in situ to obtain the clean surface.
Figure 5Symmetrized photoemission spectra of Ru nanosheets (1, ~6, and ~9 L) for (a) hv = 20 eV and (b) 800 eV. The data were taken at T = 28 K and T = 15 K, respectively. The samples were annealed in situ to obtain the clean surface. Symmetrized spectra in (a) are replotted as a function of (c) |ε − ε|0.53 and (d) |ε − ε|1.28. The insets indicate the symmetrized spectra and the fitted results. The solid curves represent the fitted curves.