Abstract
AbstractSurface templating by electrostatic surface potentials is the least invasive way to design large-scale artificial nanostructures. However, generating sufficiently large potential gradients remains challenging. Here, we lay the groundwork for significantly enhancing local electrostatic fields by chemical modification of the surface. We consider the hexagonal boron nitride (h-BN) nanomesh on Rh(111), which already exhibits small surface potential gradients between its pore and wire regions. Using photoemission spectroscopy, we show that adding Au atoms to the Rh(111) surface layer leads to a local migration of Au atoms below the wire regions of the nanomesh. This significantly increases the local work function difference between the pore and wire regions that can be quantified experimentally by the changes in the h-BN valence band structure. Using density functional theory, we identify an electron transfer from Rh to Au as the microscopic origin for the local enhancement of potential gradients within the h-BN nanomesh.
Funder
EC | European Regional Development Fund
Nemzeti Kutatási, Fejlesztési és Innovációs Hivatal
Publisher
Springer Science and Business Media LLC
Reference61 articles.
1. Crommie, M. F., Lutz, C. P. & Eigler, D. M. Confinement of electrons to quantum corrals on a metal surface. Science 262, 218–220 (1993).
2. Pennec, Y. et al. Supramolecular gratings for tuneable confinement of electrons on metal surfaces. Nat. Nanotechnol. 2, 99–103 (2007).
3. Piquero-Zulaica, I. et al. Precise engineering of quantum dot array coupling through their barrier widths. Nat. Commun. 8, 787 (2017).
4. Feng, Y. P. et al. Prospects of spintronics based on 2D materials. WIREs Comput. Mol. Sci. 7, e1313 (2017).
5. Ahn, E. C. 2D materials for spintronic devices. NPJ 2D Mater. Appl. 4, 17 (2020).
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