Binding modes of carboxylic acids on cobalt nanoparticles
Barbara Farkaš1, Umberto Terranova1, Nora H de Leeuw2
1School of Chemistry, Cardiff University, Main Building, Park Place, Cardiff, CF10 3AT, UK. DeLeeuwN@cardiff.ac.uk.
Abstract:
Owing to their high saturation magnetisation, cobalt nanoparticles hold significant potential for the hyperthermia treatment of tumours. Covalent binding of carboxylic acids to the nanoparticles can induce biocompatibility, whilst also preventing the formation of surface oxides which reduce the magnetic properties of cobalt. Understanding the origin of the acid-metal interaction is key, yet probably the most experimentally challenging step, for the rational design of such entities. In this density functional theory study, we use static calculations to establish that a 57-atom Co cluster is the smallest model able to reproduce the adsorption behaviour of carboxylic acids, and ab initio metadynamics to obtain the structure and the free energy landscape for its interaction with valeric acid. Our simulations show that a bridging bidentate binding mode has a stronger affinity compared to monodentate binding, with energetically high transition barriers between the two. A chelate interaction mode of two carboxyl oxygen atoms can be formed as an intermediate. These results clarify the organic-inorganic interactions in the cobalt-acid system, providing a basis for the rational design of biocompatible metallic nanoparticles.
Related Concept Videos
Reactions of Carboxylic Acids: Introduction
Preparation of Carboxylic Acids: Overview
Nucleophilic Acyl Substitution of Carboxylic Acid Derivatives
NMR and Mass Spectroscopy of Carboxylic Acids
While α protons of carboxylic acids absorb at 2–2.5 ppm, β protons absorb further upfield.
Carboxylic acids are easily identified by dissolving them in deuterium oxide, which results in a rapid exchange of the acidic protons with deuterium. This leads to the...
Carboxylic Acid Derivatives: Overview
Loss of Carboxy Group as CO2: Decarboxylation of β-Ketoacids


