| Literature DB >> 30855620 |
Michael Walter1, Marlene Vogel2, Vicente Zamudio-Bayer3, Rebecka Lindblad4, Thomas Reichenbach5, Konstantin Hirsch2, Andreas Langenberg2, Jochen Rittmann2, Alexander Kulesza6, Roland Mitrić7, Michael Moseler8, Thomas Möller9, Bernd von Issendorff10, J Tobias Lau11.
Abstract
We present 2p core-level spectra of size-selected aluminum and silicon cluster cations from soft X-ray photoionization efficiency curves and density functional theory. The experimental and theoretical results are in very good quantitative agreement and allow for geometric structure determination. New ground state geometries for Al12+, Si15+, Si16+, and Si19+ are proposed on this basis. The chemical shifts of the 2p electron binding energies reveal a substantial difference for aluminum and silicon clusters: while in aluminum the 2p electron binding energy decreases with increasing coordination number, no such correlation was observed for silicon. The 2p binding energy shifts in clusters of both elements differ strongly from those of the corresponding bulk matter. For aluminum clusters, the core-level shifts between outer shell atoms and the encapsulated atom are of opposite sign and one order of magnitude larger than the corresponding core-level shift between surface and bulk atoms in the solid. For silicon clusters, the core-level shifts are of the same order of magnitude in clusters and in bulk silicon but no obvious correlation of chemical shift and bond length, as present for reconstructed silicon surfaces, are observed.Entities:
Year: 2019 PMID: 30855620 DOI: 10.1039/c8cp07169a
Source DB: PubMed Journal: Phys Chem Chem Phys ISSN: 1463-9076 Impact factor: 3.676