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Controlling Magnetization Reversal and Hyperthermia Efficiency in Core-Shell Iron-Iron Oxide Magnetic Nanoparticles by Tuning the Interphase Coupling

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Date 2020 Jun 26
PMID 32582880
Citations 13
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Abstract

Magnetic particle hyperthermia, in which colloidal nanostructures are exposed to an alternating magnetic field, is a promising approach to cancer therapy. Unfortunately, the clinical efficacy of hyperthermia has not yet been optimized. Consequently, routes to improve magnetic particle hyperthermia, such as designing hybrid structures comprised of different phase materials, are actively pursued. Here, we demonstrate enhanced hyperthermia efficiency in relatively large spherical Fe/Fe-oxide core-shell nanoparticles through the manipulation of interactions between the core and shell phases. Experimental results on representative samples with diameters in the range 30-80 nm indicate a direct correlation of hysteresis losses to the observed heating with a maximum efficiency of around 0.9 kW/g. The absolute particle size, the core-shell ratio, and the interposition of a thin wüstite interlayer are shown to have powerful effects on the specific absorption rate. By comparing our measurements to micromagnetic calculations, we have unveiled the occurrence of topologically nontrivial magnetization reversal modes under which interparticle interactions become negligible, aggregates formation is minimized and the energy that is converted into heat is increased. This information has been overlooked until date and is in stark contrast to the existing knowledge on homogeneous particles.

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References
1.
Estrader M, Lopez-Ortega A, Golosovsky I, Estrade S, Roca A, Salazar-Alvarez G . Origin of the large dispersion of magnetic properties in nanostructured oxides: Fe(x)O/Fe3O4 nanoparticles as a case study. Nanoscale. 2015; 7(7):3002-15. DOI: 10.1039/c4nr06351a. View

2.
Colombo M, Carregal-Romero S, Casula M, Gutierrez L, Morales M, Bohm I . Biological applications of magnetic nanoparticles. Chem Soc Rev. 2012; 41(11):4306-34. DOI: 10.1039/c2cs15337h. View

3.
Yang M, Ho C, Ruta S, Chantrell R, Krycka K, Hovorka O . Magnetic Interaction of Multifunctional Core-Shell Nanoparticles for Highly Effective Theranostics. Adv Mater. 2018; 30(50):e1802444. PMC: 11284570. DOI: 10.1002/adma.201802444. View

4.
Kim S, Yoo M, Lee J, Lee J, Kim M . Resonant vortex-core reversal in magnetic nano-spheres as robust mechanism of efficient energy absorption and emission. Sci Rep. 2016; 6:31513. PMC: 4987621. DOI: 10.1038/srep31513. View

5.
Roosendaal , Vredenberg , Habraken . Oxidation of iron: the relation between oxidation kinetics and oxide electronic structure. Phys Rev Lett. 2000; 84(15):3366-9. DOI: 10.1103/PhysRevLett.84.3366. View