Issue 11, 2019, Issue in Progress

Cobalt ferrite supported on reduced graphene oxide as a T2 contrast agent for magnetic resonance imaging

Abstract

Nanoscaled spinel-structured ferrites bear promise as next-generation contrast agents for magnetic resonance imaging. However, the small size of the particles commonly leads to colloidal instability under physiological conditions. To circumvent this problem, supports onto which the dispersed nanoparticles can be anchored have been proposed. Amongst these, flakes of graphene have shown interesting performance but it remains unknown if and how their surface texture and chemistry affect the magnetic properties and relaxation time (T2) of the ferrite nanoparticles. Here, it is shown that the type of graphene oxide (GO) precursor, used to make composites of cobalt ferrite (CoFe2O4) and reduced GO, influences greatly not just the T2 but also the average size, dispersion and magnetic behaviour of the grafted nanoparticles. Accordingly, and without compromising biocompatibility, a judicious choice of the initial GO precursor can result in the doubling of the proton relaxivity rate in this system.

Graphical abstract: Cobalt ferrite supported on reduced graphene oxide as a T2 contrast agent for magnetic resonance imaging

Supplementary files

Article information

Article type
Paper
Submitted
17 Nov 2018
Accepted
15 Feb 2019
First published
21 Feb 2019
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2019,9, 6299-6309

Cobalt ferrite supported on reduced graphene oxide as a T2 contrast agent for magnetic resonance imaging

A. Alazmi, V. Singaravelu, Nitin M. Batra, J. Smajic, M. Alyami, N. M. Khashab and P. M. F. J. Costa, RSC Adv., 2019, 9, 6299 DOI: 10.1039/C8RA09476D

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