Electrostatic potentials of atomic nanostructures at metal surfaces quantified by scanning quantum dot microscopy.
Ontology highlight
ABSTRACT: The discrete and charge-separated nature of matter - electrons and nuclei - results in local electrostatic fields that are ubiquitous in nanoscale structures and relevant in catalysis, nanoelectronics and quantum nanoscience. Surface-averaging techniques provide only limited experimental access to these potentials, which are determined by the shape, material, and environment of the nanostructure. Here, we image the potential over adatoms, chains, and clusters of Ag and Au atoms assembled on Ag(111) and quantify their surface dipole moments. By focusing on the total charge density, these data establish a benchmark for theory. Our density functional theory calculations show a very good agreement with experiment and allow a deeper analysis of the dipole formation mechanisms, their dependence
SUBMITTER: Bolat R
PROVIDER: S-EPMC10937982 | biostudies-literature | 2024 Mar
REPOSITORIES: biostudies-literature
ACCESS DATA