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Magnetic iron oxide and the effect of grafting on the magnetic properties

机译:磁性氧化铁及移植对磁性的影响

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In our studies, related to projects developing nanoparticles for sentinel node detection of breast cancer [Nanomagdye FP7, EU project grant agreement nr NMP3-SL-2008-214032 and Nanomatrix INTERREG Ⅳ program Upper Rhine Valley A21], we focused on the magnetic iron oxide nanoparticles in 10-40 nm range made by precipitation in aqueous media, on the functionalization by dendrons ensuring the stabilization in aqueous media and on the effect of grafting on the magnetic properties. By combining magnetic measurements, X-ray diffraction and Mossbauer spectrometry, we showed that the nanoparticles can be described by a core-shell model, that is, a magnetite core surrounded by an oxidized layer close to maghemite. The fractional volume of maghemite increases as the particle size decreases so that below 20 nm, the particle is oxidized in the whole volume and the nanoparticles cannot be properly labeled as "magnetite". The oxide/molecule interactions have a strong effect on the magnetic structure and properties, hi case of phosphonate coupling agent, the saturation magnetization is increased and no spin canting is observed due to a covalent bonding.
机译:在我们的研究中,与开发乳腺癌的纳米粒子的纳米粒子有关的研究[Nanomagdye FP7,欧盟项目授予协议NR NMP3-SL-2008-214032和Nanomatrix Interricⅳ程序上莱茵河谷A21],我们专注于磁性氧化铁纳米颗粒在10-40nm范围内通过沉淀在水性介质中,树枝状管中的官能化,确保水性介质中的稳定性和嫁接对磁性的影响。通过组合磁测量,X射线衍射和母培光谱法,我们表明纳米颗粒可以通过芯壳模型描述,即,由靠近磁性磁石的氧化层包围的磁铁矿芯。随着粒度的降低使得颗粒尺寸降低使得颗粒在整个体积中被氧化,纳米颗粒不能适当地标记为“磁铁矿”,颗粒被氧化。氧化物/分子相互作用对磁性结构和性质具有很强的效果,膦酸偶联剂的壳种,饱和磁化强度增加,由于共价键合而没有观察到旋倾沉荷。

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