4.6 Article

Adjusting the Neel relaxation time of Fe3O4/ZnxCo1-xFe2O4 core/shell nanoparticles for optimal heat generation in magnetic hyperthermia

Journal

NANOTECHNOLOGY
Volume 32, Issue 6, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/1361-6528/abc386

Keywords

core; shell nanoparticles; magnetic fluid hyperthermia; Né el relaxation time

Funding

  1. Argentinian governmental agency ANPCyT [PICT-2016-0288, PICT-2018-02565]
  2. UNCuyo [06/C527, 06/C528, H2020-MSCARISE-2016, 734187]

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This study demonstrates a precise method to optimize heat generation in high viscosity magnetic colloids by adjusting the Neel relaxation time in core/shell bimagnetic nanoparticles. The magnetic measurements and experiments of magnetic fluid hyperthermia showed that adjusting the shell composition can maximize the specific loss power in viscous media, leading to potential applications in biomedical fields that require smaller particle sizes.
In this work it is shown a precise way to optimize the heat generation in high viscosity magnetic colloids, by adjusting the Neel relaxation time in core/shell bimagnetic nanoparticles, for magnetic fluid hyperthermia (MFH) applications. To pursue this goal, Fe3O4/ZnxCo1-xFe2O4 core/shell nanoparticles were synthesized with 8.5 nm mean core diameter, encapsulated in a shell of similar to 1.1 nm of thickness, where the Zn atomic ratio (Zn/(Zn + Co) at%) changes from 33 to 68 at%. The magnetic measurements are consistent with a rigid interface coupling between the core and shell phases, where the effective magnetic anisotropy systematically decreases when the Zn concentration increases, without a significant change of the saturation magnetization. Experiments of MFH of 0.1 wt% of these particles dispersed in water, in Dulbecco modified Eagles minimal essential medium, and a high viscosity butter oil, result in a large specific loss power (SLP), up to 150 W g(-1), when the experiments are performed at 571 kHz and 200 Oe. The SLP was optimized adjusting the shell composition, showing a maximum for intermediate Zn concentration. This study shows a way to maximize the heat generation in viscous media like cytosol, for those biomedical applications that require smaller particle sizes.

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