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Self-Heating Temperature and AC Hysteresis of Magnetic Iron Oxide Nanoparticles and Their Dependence on Secondary Particle Size

机译:磁性氧化铁纳米粒子的自热温度和AC磁滞及其与次级粒径的关系

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摘要

Magnetic nanoparticles are expected to be used as hyperthermia agents. The mechanism of self-heating of the magnetic nanoparticles under an ac magnetic field is different according to their size. In this study, the temperature rise for the ac/dc hysteresis loops of magnetic nanoparticles were evaluated to clarify the contribution of the Néel and Brownian relaxations to heat dissipation. The samples were dextran-coated magnetic iron oxide nanoparticles of different hydrodynamic diameters (40, 54, and 86 nm), but the same primary diameter of 10 nm. From these diameters, the peak frequencies for the Brownian and Néel relaxations were calculated. The Néel relaxation time, determined by the primary particle size, is much shorter than the Brownian relaxation time for these samples. Although the Néel relaxation is dominant, the self-heating temperature rise of the 86 nm sample was higher than that of the 40 and 54 nm samples. These results suggest that the effect of the magnetic interaction between the nanoparticles depends on the hydrodynamic diameter.
机译:磁性纳米粒子有望用作热疗剂。磁性纳米粒子在交流磁场下的自热机理根据其大小而有所不同。在这项研究中,对磁性纳米粒子的ac / dc磁滞回线的温升进行了评估,以阐明Néel和Brownian弛豫对散热的贡献。样品是具有不同流体力学直径(40、54和86 nm)但具有相同的10 nm主直径的葡聚糖涂层的磁性氧化铁纳米颗粒。根据这些直径,计算出布朗和奈尔弛豫的峰值频率。由初级粒径确定的尼尔弛豫时间比这些样品的布朗弛豫时间短得多。尽管Néel弛豫占主导地位,但86 nm样品的自热温度升高幅度高于40和54 nm样品的自热升高幅度。这些结果表明,纳米颗粒之间的磁性相互作用的影响取决于流体动力学直径。

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