Molecular dynamics characterisation of radiosensitising coated gold nanoparticles in aqueous environment
Alexey V. Verkhovtsev, Adam Nichols, Nigel J. Mason, Andrey V., Solov'yov

TL;DR
This study uses advanced computational modeling to analyze how coating density and ligand length on gold nanoparticles affect their structure and water interaction, which are key factors in their effectiveness as radiosensitizers in radiotherapy.
Contribution
It presents a systematic computational approach for atomistic characterization of coated metal nanoparticles in molecular media, applicable to various core, coating, and environment combinations.
Findings
Coating structure depends strongly on ligand surface density.
Denser coatings form
Water content varies with ligand length and density, affecting radical production.
Abstract
Functionalized metal nanoparticles (NPs) have been proposed as promising radiosensitizing agents for more efficient radiotherapy treatment using photons and ion beams. Radiosensitizing properties of NPs may depend on many different parameters (such as size, composition and density) of the metal core, organic coatings and the molecular environment. A systematic exploration of each of these parameters on the atomistic level remains a costly experimental task but it can be addressed by means of advanced computational modeling. This paper outlines a detailed computational procedure for the construction and atomistic-level characterization of radiosensitizing metal NPs in explicit molecular media. The procedure is general and extensible to many different combinations of the core, coating and environment. As an illustrative and experimentally relevant case study, we consider nanometre-sized…
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Taxonomy
TopicsRadiation Therapy and Dosimetry · Gold and Silver Nanoparticles Synthesis and Applications · Catalytic Processes in Materials Science
