About
Anthoula Papageorgiou studied physics and materials science in London, Cambridge and Thessaloniki. She obtained a chemistry PhD in 2007 from University College London under the supervision of Prof. Geoff Thornton (Nanoscience Group). She subsequently took a research appointment mentored by Prof. Richard Lambert (Surface Science and Catalysis Group) in the University of Cambridge. In 2010 she moved to the Technical University of Munich to work with Prof. Johannes Barth (Chair of Molecular Nanoscience and Chemical Physics of Interfaces) as a Marie Curie postdoctoral fellow. She habilitated in the same department in 2019. In 2022 she joined the National and Kapodistrian University of Athens as an assistant professor of physical chemistry.
Employment
Employment history is unavailable.
Education
Education history is unavailable.
Projects & Funding
Projects & funding information is unavailable.
Publications (67)
- On‐Surface Indigo‐Based Bimolecular Coordination Networks with Programmable Regular or Vitreous Structure Save
- Landing-Energy-Controlled Surface Conformation of Electrosprayed Foldamer Molecules on Au(111) Save
- Guiding the Formation of Surface‐Confined 2D Metal–Organic Coordination Networks by Variation of Constituent Landing Energy in Electrospray Deposition of an Iron(II) Grid Complex Save
- On-Surface Synthesis, Coordination and Fusion of Metalated Porphyrinoids Save
- Selective On-Surface Metalation and Uncommon Reordering of Self-Assembled Macrocyclic Biquinazoline Ligands on Ag(111) Save
- Octaethyl vs Tetrabenzo Functionalized Ru Porphyrins on Ag(111): Molecular Conformation, Self-Assembly and Electronic Structure Save
- Holistic structural understanding of epitaxially-grown Bi/Au(111) moiré superstructures Save
- On-Surface Isomerization of Indigo within 1D Coordination Polymers Save
- Controlling the Binding of Ligands to Molecular Assemblies of Porphyrin Pedestals on Surfaces Save
- Depositing Molecular Graphene Nanoribbons on Ag(111) by Electrospray Controlled Ion Beam Deposition: Self‐Assembly and On‐Surface Transformations Save