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Magnetic moment degradation of nanowires in biological media: Real-time monitoring with SQUID magnetometry

机译:纳米线在生物介质中的磁矩降解:利用SQUID磁强法实时监测

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摘要

Magnetic nanoparticles are used throughout biology for applications from targeted drug and gene delivery to the labeling of cells. These nanoparticles typically react with the biological medium to which they are introduced, resulting in a diminished magnetic moment. The rate at which their magnetic moment is diminished limits their utility for targeting and can signal the unintended release of surface-functionalized biomolecules. A foreknowledge of the time-dependent degradation of the magnetic moment in a given medium can aid in the selection of the optimal buffering solution and in the prediction of a reasonable experimental time frame. With this goal in mind, we have developed a SQUID magnetometer based methodology for measuring the saturation magnetic moment of nanoparticles in real time while immersed in a biological medium. Measurements on Co and Ni nanowires in a variety of commonly used buffered salines demonstrated that the technique has the dynamic range and sensitivity to detect the rapid reduction in moment due to active corrosion as well as much more subtle changes from the formation of a passivating surface oxide layer. In order to correlate the magnetic moment reductions to these specific chemical processes, samples were additionally characterized using x-ray photoelectron spectroscopy, inductively coupled plasma spectroscopy and scanning electron microscopy. The most reactive buffers studied were found to be phosphate and carbonate based, which caused active corrosion of the Co nanowires but only a comparatively slow passivation of the Ni nanowires by oxidation.
机译:磁性纳米粒子在整个生物学中都用于从靶向药物和基因递送到细胞标记的应用。这些纳米颗粒通常与引入它们的生物介质反应,导致磁矩减小。它们的磁矩减小的速率限制了它们用于靶向的效用,并且可以表明表面功能化生物分子的意外释放。对给定介质中磁矩随时间的衰减的了解可以帮助选择最佳缓冲溶液,并有助于预测合理的实验时间范围。考虑到这一目标,我们开发了一种基于SQUID磁力计的方法,可实时测量浸入生物介质中的纳米颗粒的饱和磁矩。在多种常用缓冲盐溶液中对Co和Ni纳米线进行的测量表明,该技术具有动态范围和灵敏度,可检测由于活性腐蚀以及钝化表面氧化物形成产生的细微变化而引起的力矩的迅速减小。层。为了将磁矩的减少与这些特定的化学过程相关联,还使用X射线光电子能谱,感应耦合等离子体能谱和扫描电子显微镜对样品进行了表征。发现研究的最活泼的缓冲剂是磷酸盐和碳酸盐基的,它们引起Co纳米线的主动腐蚀,但仅通过氧化使Ni纳米线钝化相对较慢。

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