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Same magnetic nanoparticles, different heating behavior: Influence of the arrangement and dispersive medium

机译:相同的磁性纳米粒子,不同的加热行为:布置和分散介质的影响

摘要

The heating ability of the same magnetic nanoparticles (MNPs) dispersed in different media has been studied in the 170¿310 K temperature range. For this purpose, the biggest non-twinned nanoparticles have been selected among a series of magnetite nanoparticles of increasing sizes synthesized via a seeded growth method. The sample with nanoparticles dispersed in n-tetracosane, thermally quenched from 100 °C and solid in the whole measuring range, follows the linear response theoretical behavior for non-interacting nanoparticles, and displays a remarkably large maximum specific absorption rate (SAR) value comparable to that of magnetosomes at the alternating magnetic fields used in the measurements. The other samples, with nanoparticles dispersed either in alkane solvents of sub-ambient melting temperatures or in epoxy resin, display different thermal behaviors and maximum SAR values ranging between 11 and 65% of that achieved for the sample with n-tetracosane as dispersive medium. These results highlight the importance of the MNPs environment and arrangement to maintain optimal SAR values, and may help to understand the disparity sometimes found between MNPs heating performance measured in a ferrofluid and after injection in an animal model, where MNP arrangement and environment are not the same.
机译:研究了在170?310 K温度范围内分散在不同介质中的相同磁性纳米颗粒(MNP)的加热能力。为此,已经通过种子生长方法合成的一系列尺寸不断增大的磁铁矿纳米颗粒中,选择了最大的非孪生纳米颗粒。具有分散在正十四烷中的纳米颗粒的样品,在100°C的温度下进行热淬灭,并且在整个测量范围内均为固体,该样品遵循非相互作用纳米颗粒的线性响应理论行为,并且显示出可比的最大比吸收率(SAR)值非常大在测量中使用的交变磁场中的磁体的磁化强度。其他样品,纳米颗粒分散在低于室温的熔融温度的烷烃溶剂中或环氧树脂中,显示出不同的热行为,最大SAR值介于正丁四烷作为分散介质的样品的11%至65%之间。这些结果凸显了MNP的环境和布置对于保持最佳SAR值的重要性,并且可能有助于理解有时在铁磁流体中测量的MNP加热性能与在动物模型中注射后MNP的加热性能之间存在差异,而MNP的布置和环境并非如此。相同。

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