Synthesis and Functional Characterization of CoxFe3−xO4-BaTiO3 Magnetoelectric Nanocomposites for Biomedical Applications

Author:

Nizamov Timur R.1ORCID,Amirov Abdulkarim A.2ORCID,Kuznetsova Tatiana O.1,Dorofievich Irina V.1,Bordyuzhin Igor G.1,Zhukov Dmitry G.1,Ivanova Anna V.1,Gabashvili Anna N.1ORCID,Tabachkova Nataliya Yu.3ORCID,Tepanov Alexander A.4,Shchetinin Igor V.1,Abakumov Maxim A.15ORCID,Savchenko Alexander G.1,Majouga Alexander G.146

Affiliation:

1. Department of Physical Materials Science, National University of Science and Technology “MISiS”, 119049 Moscow, Russia

2. Amirkhanov Institute of Physics of Dagestan Federal Research Center, Russian Academy of Sciences, 367003 Makhachkala, Russia

3. Department of Materials Science of Semiconductors and Dielectrics, National University of Science and Technology “MISiS”, 119049 Moscow, Russia

4. Chemistry Department, Lomonosov Moscow State University, 119991 Moscow, Russia

5. Department of Medical Nanobiotechnology, N.I. Pirogov Russian National Research Medical University, 117997 Moscow, Russia

6. Mendeleev University of Chemical Technology of Russia, 125047 Moscow, Russia

Abstract

Nowadays, magnetoelectric nanomaterials are on their way to finding wide applications in biomedicine for various cancer and neurological disease treatment, which is mainly restricted by their relatively high toxicity and complex synthesis. This study for the first time reports novel magnetoelectric nanocomposites of CoxFe3−xO4-BaTiO3 series with tuned magnetic phase structures, which were synthesized via a two-step chemical approach in polyol media. The magnetic CoxFe3−xO4 phases with x = 0.0, 0.5, and 1.0 were obtained by thermal decomposition in triethylene glycol media. The magnetoelectric nanocomposites were synthesized by the decomposition of barium titanate precursors in the presence of a magnetic phase under solvothermal conditions and subsequent annealing at 700 °C. X-ray diffraction revealed the presence of both spinel and perovskite phases after annealing with average crystallite sizes in the range of 9.0–14.5 nm. Transmission electron microscopy data showed two-phase composite nanostructures consisting of ferrites and barium titanate. The presence of interfacial connections between magnetic and ferroelectric phases was confirmed by high-resolution transmission electron microscopy. Magnetization data showed expected ferrimagnetic behavior and σs decrease after the nanocomposite formation. Magnetoelectric coefficient measurements after the annealing showed non-linear change with a maximum of 89 mV/cm*Oe with x = 0.5, 74 mV/cm*Oe with x = 0, and a minimum of 50 mV/cm*Oe with x = 0.0 core composition, that corresponds with the coercive force of the nanocomposites: 240 Oe, 89 Oe and 36 Oe, respectively. The obtained nanocomposites show low toxicity in the whole studied concentration range of 25–400 μg/mL on CT-26 cancer cells. The synthesized nanocomposites show low cytotoxicity and high magnetoelectric effects, therefore they can find wide applications in biomedicine.

Funder

Ministry of Science and Higher Education of the Russian Federation in the framework of the State Task

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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