Cobalt coordination to a FeTPyP monolayer on graphene yields a two-dimensional FeTPyP−Co metal-organic network, stabilizing highly reactive Fe(I) sites within a biomimetic coordination architecture. The assembly process triggers an electronic reorganization that activates the pristine Fe(II) centers, enabling competitive CO ligation. A thorough synergistic investigation combining in situ photon-in/photon-out and photon-in/electron-out methods with density-functional theory simulations is presented. Distinct vibronic fingerprints reveal the complexity of the system, with anharmonic hot-band features associated with CO ligation at Co sites and a red-shifted mode uniquely assigned to CO ligation at Fe sites. Spectroscopic and theoretical results consistently indicate pronounced charge transfer and oxidation-state changes induced by adsorption. The bonding nature is site-specific, with linear CO at Co and tilted coordination at Fe. Quantitative pressuredependent measurements uncover weak, fully reversible adsorption at room temperature, highlighting dynamic ligand-exchange processes and mild anti-cooperativity driven by indirect long-range, network-mediated interactions.

Ligation of Carbon Monoxide at Iron and Cobalt Single-Metal-Atom Sites: Competition for the +1 Oxidation State in a Surface-Confined Organic Network / Namar, A., Roondhe, B., Baronio, S., De Col, M., Jugovac, M., Scardamaglia, M., Giannozzi, P., Vesselli, E.. - In: JOURNAL OF PHYSICAL CHEMISTRY. C. - ISSN 1932-7447. - 130:38(2026), pp. 13458-13468. [10.1021/acs.jpcc.6c04980]

Ligation of Carbon Monoxide at Iron and Cobalt Single-Metal-Atom Sites: Competition for the +1 Oxidation State in a Surface-Confined Organic Network

A. Namar;S. Baronio;M. De Col;M. Jugovac;E. Vesselli
2026-01-01

Abstract

Cobalt coordination to a FeTPyP monolayer on graphene yields a two-dimensional FeTPyP−Co metal-organic network, stabilizing highly reactive Fe(I) sites within a biomimetic coordination architecture. The assembly process triggers an electronic reorganization that activates the pristine Fe(II) centers, enabling competitive CO ligation. A thorough synergistic investigation combining in situ photon-in/photon-out and photon-in/electron-out methods with density-functional theory simulations is presented. Distinct vibronic fingerprints reveal the complexity of the system, with anharmonic hot-band features associated with CO ligation at Co sites and a red-shifted mode uniquely assigned to CO ligation at Fe sites. Spectroscopic and theoretical results consistently indicate pronounced charge transfer and oxidation-state changes induced by adsorption. The bonding nature is site-specific, with linear CO at Co and tilted coordination at Fe. Quantitative pressuredependent measurements uncover weak, fully reversible adsorption at room temperature, highlighting dynamic ligand-exchange processes and mild anti-cooperativity driven by indirect long-range, network-mediated interactions.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11368/3146898
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