arXiv · 2006.10482
Molecular anchoring stabilizes low valence Ni(I)TPP on copper against thermally induced chemical changes
Abstract
Many applications of molecular layers deposited on metal surfaces, ranging from single-atom catalysis to on-surface magnetochemistry and biosensing, rely on the use of thermal cycles to regenerate the pristine properties of the system. Thus, understanding the microscopic origin behind the thermal stability of organic/metal interfaces is fundamental for engineering reliable organic-based devices. Here, we study nickel porphyrin molecules on a copper surface as an archetypal system containing a metal center whose oxidation state can be controlled through the interaction with the metal substrate. We demonstrate that the strong molecule-surface interaction, followed by charge transfer at the interface, plays a fundamental role in the thermal stability of the layer by rigidly anchoring the porphyrin to the substrate. Upon thermal treatment, the molecules undergo an irreversible transition at 420 K, which is associated with an increase of the charge transfer from the substrate, mostly localized on the phenyl substituents, and a downward tilting of the latters without any chemical modification
Explore related subjects
Keep this discovery
Henning Maximilian Sturmeit, Iulia Cojocariu, Matteo Jugovac, Albano Cossaro, Alberto Verdini, Luca Floreano, Alessandro Sala, Giovanni Comelli, Stefania Moro, Matus Stredansky, Manuel Corva, Erik Vesselli, Peter Puschnig, Claus Michael Schneider, Vitaliy Feyer, Giovanni Zamborlini, Mirko Cinchetti. 2020-06-18. Molecular anchoring stabilizes low valence Ni(I)TPP on copper against thermally induced chemical changes. https://doi.org/10.1039/d0tc00946f
Cite the original work for its findings. Save a collection to share your selection of sources.