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首页> 外文期刊>Journal of Applied Physics >Temperature trends and correlation between SQUID superparamagnetic relaxometry and dc-magnetization on model iron-oxide nanoparticles
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Temperature trends and correlation between SQUID superparamagnetic relaxometry and dc-magnetization on model iron-oxide nanoparticles

机译:SQUID超顺磁弛豫法与模型氧化铁纳米粒子的直流磁化的温度趋势及其相关性

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摘要

Structural properties of iron-oxide nanoparticles deeply affect their magnetic performance in many applications such as with superparamagnetic relaxometry, when employed as cell-targeted magnetic nanoparticles for in vivo diagnostics. In this work, we present a detailed characterization of model nanoparticles for this application, with an average size of similar to 25 nm and a narrow size dispersion (sigma < 7%). Considering the intrinsic structural properties of these model nanoparticles, the study of temperature dependence and correlation between dc-magnetization and superconducting quantum interference detector-relaxometry are discussed based on known theoretical predictions and computer simulations of the magnetic dipole moment and characteristic decay constants. Furthermore, computer simulations provide support in clarifying how important the overall collective magnetization is affected by particle size dispersion, which has a direct role on sustaining the magnetic relaxation signal in the temperature range required in preclinical and clinical settings. Published under license by AIP Publishing.
机译:氧化铁纳米颗粒的结构性质在许多应用中(例如,超顺磁性弛豫法)在用作体内诊断的细胞靶向磁性纳米颗粒时会深深地影响其磁性能。在这项工作中,我们提供了针对此应用的模型纳米颗粒的详细表征,其平均粒径类似于25 nm,粒径分布较窄(σ<7%)。考虑到这些模型纳米粒子的固有结构特性,基于磁偶极矩和特征衰减常数的已知理论预测和计算机模拟,讨论了直流磁化与超导量子干扰探测器弛豫法之间的温度依赖性和相关性研究。此外,计算机模拟为阐明总体集体磁化强度受粒度分散的影响提供了支持,而粒度分散对在临床前和临床环境所需的温度范围内维持磁弛豫信号具有直接作用。由AIP Publishing授权发布。

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