Issue 24, 2021

The mechanism underlying the functionalisation of cobalt nanoparticles by carboxylic acids: a first-principles computational study

Abstract

The promise of biocompatible magnetic nanoparticles with high magnetic saturation in the implementation as drug carriers and hyperthermia agents has generated significant interest in functionalised cobalt nanoparticles. Carboxylic acid coatings on metallic nanoparticles have been shown as an attractive option owing to their respectable stability and biocompatibility. However, only limited information is available on the molecular mechanism leading to the formation of such protective coatings. In this study, ab initio molecular dynamics simulations have been used to unravel the functionalisation mechanism starting from a neutral cobalt cluster and valeric acid molecules. Three stages were detected in the coating process: (i) rapid initial adsorption of acid molecules, (ii) simultaneous adsorption of new molecules and dissociation of those already interacting with the cluster, and, finally, (iii) grouping of dissociated hydrogen atoms and subsequent desorption of acid molecules. The fate of the hydrogen atoms was probed through a combination of static and dynamic ab initio modelling approaches, which predicted H2 generation with favourable energetics. A better understanding of the functionalisation and interaction mechanisms will aid the rational design of biocompatible cobalt nanoparticles for various applications.

Graphical abstract: The mechanism underlying the functionalisation of cobalt nanoparticles by carboxylic acids: a first-principles computational study

Article information

Article type
Paper
Submitted
17 Dec 2020
Accepted
02 Jun 2021
First published
03 Jun 2021
This article is Open Access
Creative Commons BY license

J. Mater. Chem. B, 2021,9, 4915-4928

The mechanism underlying the functionalisation of cobalt nanoparticles by carboxylic acids: a first-principles computational study

B. Farkaš, U. Terranova and N. H. de Leeuw, J. Mater. Chem. B, 2021, 9, 4915 DOI: 10.1039/D0TB02928A

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