Heating efficiency of PEGylated Mn–Zn ferrite nanoparticles for magnetic fluid hyperthermia

被引:0
作者
M. K. Al-Omoush
M. A. Bryleva
V. O. Dmitriev
O. E. Polozhentsev
A. V. Soldatov
机构
[1] Southern Federal University,The Smart Materials Research Institute
[2] Don State Technical University,undefined
来源
Applied Physics A | 2024年 / 130卷
关键词
Magnetic fluid hyperthermia; Manganese zinc mixed ferrite nanoparticles; Zn substitution; Magnetic properties; Specific absorption rate; Intrinsic loss power;
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摘要
In this work, a series of PEGylated manganese-zinc ferrite mixed (PEG-Mn1-xZnxFe2O4) nanoparticles with varying concentrations of zinc ions (x = 0.0, 0.25, 0.4, 0.5, 0.75, 1.0) were synthesized using a solvothermal approach to investigate their physicochemical and magnetic hyperthermia properties through a range of analytical techniques, including TEM, XRF, XRD, FTIR, VSM, and magnetic hyperthermia. The PEG-Mn1-xZnxFe2O4 nanoparticles exhibited a nearly spherical shape and diameters less than 30 nm. The particle size decreased from 27 to 11.6 nm with an increasing amount of zinc (x = 0.0–0.5). The saturation magnetization (MS) value decreased with the rising Zn content, ranging from 77.8 to 30.7 emu/g. The addition of zinc led to a reduction in the specific absorption rate (SAR) of the material. This decrease in the SAR parameter was associated with a decline in the intrinsic loss power (ILP) value, varying from 0.264 nH m2/kg for MnFe2O4 to 0.037 nH m2/kg for ZnFe2O4. Consequently, these PEG-Mn1-xZnxFe2O4 nanoparticles exhibit potential as candidates for magnetic fluid hyperthermia applications.
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[1]  
Reddy LH(2012)Magnetic nanoparticles: design and characterization, toxicity and biocompatibility, pharmaceutical and biomedical applications Chem. Rev. 112 5818-5878
[2]  
Arias JL(2012)Magnetic nanoparticles: preparation, physical properties, and applications in biomedicine Nanoscale Res. Lett. 7 144-449
[3]  
Nicolas J(2010)Magnetic iron oxide nanoparticles for biomedical applications Future Med. Chem. 2 427-638
[4]  
Couvreur P(2012)Biological applications of magnetic nanoparticles Chem. Soc. Rev. 41 4306-1186
[5]  
Akbarzadeh A(2022)Synthesis and stability of magnetic nanoparticles Bionanoscience. 12 627-481
[6]  
Samiei M(2021)Review on recent progress in magnetic nanoparticles: synthesis, characterization, and diverse applications Front. Chem. 9 1146-46
[7]  
Davaran S(2021)Recent progress of magnetic nanoparticles in biomedical applications: a review Nano Select. 2 474-681
[8]  
Laurent S(2014)Magnetic nanoparticles: a novel platform for cancer theranostics Drug Discov. Today 19 38-55
[9]  
Bridot J-L(2014)Innovative magnetic nanoparticle platform for magnetic resonance imaging and magnetic fluid hyperthermia applications Curr. Opin. Chem. Eng. 4 672-196
[10]  
Elst LV(2013)Magnetic nanoparticles-based diagnostics and theranostics Curr. Opin. Biotech. 4 42-23