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Hydrophilization of Magnetic Nanoparticles with Modified Alternating Copolymers. Part 1: The Influence of the Grafting.用改性交替共聚物对磁性纳米粒子进行亲水化处理。第1部分:接枝的影响。
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2
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Biomaterials. 2010 Apr;31(12):3384-94. doi: 10.1016/j.biomaterials.2010.01.042. Epub 2010 Feb 10.
3
Magnetic nanoparticles with functional silanes: evolution of well-defined shells from anhydride containing silane.具有功能性硅烷的磁性纳米颗粒:含酸酐硅烷形成明确界定外壳的演变过程
J Mater Chem. 2009 Jan 1;19(24):4231-4239. doi: 10.1039/b821917f.
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Hydrophilic Monodisperse Magnetic Nanoparticles Protected by an Amphiphilic Alternating Copolymer.由两亲性交替共聚物保护的亲水性单分散磁性纳米粒子。
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Structural insights into the molecular organization of the S-layer from Clostridium difficile.艰难梭菌S层分子组织的结构洞察
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用改性交替共聚物对磁性纳米粒子进行亲水化处理。第2部分:在溶液中的行为。

Hydrophilization of Magnetic Nanoparticles with Modified Alternating Copolymers. Part 2: Behavior in solution.

作者信息

Shtykova Eleonora V, Malyutin Andrey, Dyke Jason, Stein Barry, Konarev Peter V, Dragnea Bogdan, Svergun Dmitri I, Bronstein Lyudmila M

机构信息

Institute of Crystallography, Russian Academy of Sciences, Leninsky pr. 59, 117333 Moscow, Russia.

出版信息

J Phys Chem C Nanomater Interfaces. 2010 Dec 23;114(50):21908-21913. doi: 10.1021/jp1072846.

DOI:10.1021/jp1072846
PMID:21243096
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3018835/
Abstract

Aqueous solutions of iron oxide nanoparticles (NPs) stabilized by poly(maleic acid-alt-1-octadecene) (PMAcOD) modified with the 5,000 Da poly(ethylene glycol) (PEG) or the short ethylene glycol (EG) tails were analyzed by small-angle X-ray scattering (SAXS). Advanced SAXS data analysis methods were employed to systematically characterize the structure and interactions between the NPs. Depending on the type of the grafted tail and the grafting density all NPs can be separated into three groups. All the samples contain mixtures of individual nanoparticles, their dynamic clusters and aggregates, and the fractions of these species are different in the different groups. The first group consists of NPs coated with PMAcOD modified with the long PEG tails with the maximal grafting density, and the content of dynamic clusters and aggregates in the samples of this group does not exceed 4%. The samples from the second group with less dense coatings demonstrate a larger amount (5-7%) of the aggregates and dynamic clusters. The samples from the third group consisting of the NPs protected by EG modified PMAcOD contain mostly individual NPs and some amount of dumbbell dimers without noticeable aggregation. Importantly, the solution behavior of the NPs is independent on the iron oxide core size. Our results therefore provide means of predicting stabilization and avoiding aggregation of NPs based on the type of a protective shell.

摘要

通过小角X射线散射(SAXS)分析了用5000 Da聚乙二醇(PEG)或短乙二醇(EG)链段修饰的聚(马来酸-alt-1-十八烯)(PMAcOD)稳定的氧化铁纳米颗粒(NPs)的水溶液。采用先进的SAXS数据分析方法系统地表征了NPs之间的结构和相互作用。根据接枝链段的类型和接枝密度,所有NPs可分为三组。所有样品均包含单个纳米颗粒、其动态簇和聚集体的混合物,且这些物种的比例在不同组中有所不同。第一组由涂有最大接枝密度的长PEG链段修饰的PMAcOD的NPs组成,该组样品中动态簇和聚集体的含量不超过4%。涂层较稀疏的第二组样品显示出较多(5-7%)的聚集体和动态簇。第三组样品由EG修饰的PMAcOD保护的NPs组成,主要包含单个NPs和少量哑铃状二聚体,无明显聚集。重要的是,NPs的溶液行为与氧化铁核尺寸无关。因此,我们的结果提供了基于保护壳类型预测NPs稳定性和避免聚集的方法。