从FeCl2溶液中氧化沉淀CA和/或EDTA功能化磁性氧化铁纳米颗粒:结构和磁性研究

Mirjana Milić, Nataša Jović Orsini, Smilja Marković
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摘要

摘要采用简单的低温氧化沉淀法,从FeCl 2∙4H 2 o - naoh - nano3水溶液中制备了4种不同尺寸的磁性氧化铁纳米颗粒(MIONs)样品。对于两种样品的制备,采用乙二胺四乙酸(EDTA)螯合剂作为溶液中fe2 +离子的稳定剂,对通常的氧化沉淀合成方案进行了改进,使所制备的MIONs被EDTA分子部分覆盖。四分之三的样品在合成后的方案中受到柠檬酸(CA)功能化。利用各种实验技术(XRD, TEM,傅里叶变换红外,动态光散射,Mössbauer和SQUID)评估了合成的MIONs的结构和磁性能。通过改变合成方案,球形离子的平均尺寸从7纳米调整到38纳米。它们的室温饱和磁化强度ms在43 ~ 91 emu g−1之间。通过比吸收率值(139 ~ 390 W/g Fe)来表示磁加热能力,讨论了它们的结构和磁性能以及可能的能量耗散机制。EDTA修饰的样品表现出最佳的加热性能,平均粒径为14 nm和37 nm, M s = 87 emu g−1。虽然该样品中含有易形成聚集体的颗粒,但EDTA盖层使该样品具有良好的胶体稳定性,从而保持了磁加热能力。结果表明,由7 nm尺寸的CA-和14 nm尺寸的EDTA/CA官能化超顺磁性mons组成的两个样品具有相似的流体动力学半径,在相对快速振荡的交流磁场f = 577 kHz中以非常相似的方式加热。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CA and/or EDTA Functionalized Magnetic Iron Oxide Nanoparticles by Oxidative Precipitation from FeCl2 Solution: Structural and Magnetic Study
Abstract Four samples containing magnetic iron oxide nanoparticles (MIONs) of various sizes are prepared employing a simple low-temperature method of oxidative precipitation from FeCl 2 ∙4H 2 O–NaOH–NaNO 3 aqueous solution. For the preparation of two samples, the usual oxidation-precipitation synthesis protocol is modified by using ethylenediaminetetraacetic acid (EDTA) chelating agent as a stabilizer of the Fe 2+ ions in a solution, which results in the partial capping of the prepared MIONs with EDTA molecules. Three out of four samples are subjected to citric acid (CA) functionalization in the post synthesis protocol. Structural and magnetic properties of the synthesized MIONs are assessed using various experimental techniques (XRD, TEM, Fourier transform infrared, dynamic light scattering, Mössbauer, and SQUID). The average size of spherical-like MIONs is tuned from 7 nm to 38 nm by changing the synthesis protocol. Their room temperature saturation magnetization, M s , is in the range of 43 to 91 emu g −1 . Magnetic heating ability, expressed via specific absorption rate value, which ranges from 139 to 390 W/g Fe , is discussed in relation to their structural and magnetic properties and the possible energy dissipation mechanisms involved. The best heating performance is exhibited by the sample decorated with EDTA and with a bimodal size distribution with average particle sizes of 14 and 37 nm and M s = 87 emu g −1 . Though this sample contains particles prone to form aggregates, capping with EDTA provides good colloidal stability of this sample, thus preserving the magnetic heating ability. It is demonstrated that two samples, consisting of 7 nm-sized CA- or 14 nm-sized EDTA/CA-functionalized superparamagnetic MIONs, with a similar hydrodynamic radius, heat in a very similar way in the relatively fast oscillating alternating current magnetic field, f = 577 kHz.
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