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Synthesis and Characterization of Diblock Copolymer Templated Iron Oxide Nanoparticles

机译:二嵌段共聚物模板化氧化铁纳米粒子的合成与表征

摘要

Templating ordered assemblies of magnetic oxide nanoparticles within self-assembled diblock copolymers of varying morphologies is an important problem with a wide applicability such as in electromagnetics, optical devices, metal catalysts, medicine and biology. In this thesis, the effects of different polymer structures on particle ordering and resultant magnetic properties have been investigated using various microstructure and magnetic characterization tools.Ring-opening metathesis polymerization (ROMP) of norbornene and functionalized norbornene monomers has been used to synthesize diblock copolymers of narrow polydispersities using Grubbs' catalyst. These block copolymers can be used as templates to form inorganic nanoparticles. In this research, the structural andphysical understanding of the inorganic-copolymer system was studied by small-angle neutron and x-ray scattering techniques and transmission electron microscopy. Synthesis of $gamma$-Fe$_2$O$_3$ nanoparticles has been achieved within novelblock copolymers of (norbornene)-b-(deuterated norbornene dicarboxylic) acid and (norbornene methanol)-(norbornene dicarboxylic acid). The polymer morphologies were controlled by varying the volume fractions of the constituent blocks. The pure norbornene based diblock copolymer morphologies were demonstrated by electron microscopy for the first time. Spherical, cylindrical and lamellar morphologies of these novel diblock copolymers werereported. The block ratios of the synthesized polymers were determined using gel permeation chromatography - light scattering, elemental analysis and UV-VIS spectroscopy. Solution phase dopingand submersion of thin films in metal salt solutions were employed as metal doping methods and the observed nanoparticle structures were compared to those of the undoped copolymer morphologies. Thisproject reports on the types of templating structures and dispersion of the nanoparticles. The effects of particle interactions on the microphase separation and magnetic properties were also investigated. The knowledge gained from understanding the templating mechanism in block copolymer / iron oxidenanocomposites can be applied to other similar systems for a variety of biological and catalyst applications.
机译:在各种形态的自组装二嵌段共聚物中,模板化磁性氧化物纳米粒子的有序组装是一个重要的问题,具有广泛的适用性,例如在电磁学,光学设备,金属催化剂,医学和生物学中。本文使用各种微观结构和磁性表征工具研究了不同聚合物结构对粒子有序性和磁性能的影响。降冰片烯和官能化降冰片烯单体的开环易位聚合(ROMP)已被用于合成低聚降冰片烯的二嵌段共聚物。使用Grubbs催化剂可实现窄的多分散性。这些嵌段共聚物可以用作模板以形成无机纳米颗粒。在这项研究中,通过小角中子和X射线散射技术以及透射电子显微镜研究了无机共聚物体系的结构和物理性质。在(降冰片烯)-b-(氘代降冰片烯二羧酸)酸和(降冰片烯甲醇)-(降冰片烯二羧酸)的新型嵌段共聚物中已经实现了$γ-Fe$ _2 $ O $ _3 $纳米粒子的合成。通过改变组成嵌段的体积分数来控制聚合物形态。首次通过电子显微镜证明了基于纯降冰片烯的二嵌段共聚物的形态。报告了这些新型二嵌段共聚物的球形,圆柱形和层状形态。使用凝胶渗透色谱法-光散射,元素分析和UV-VIS光谱法确定合成的聚合物的嵌段比。将溶液相掺杂和薄膜浸入金属盐溶液中作为金属掺杂方法,并将观察到的纳米颗粒结构与未掺杂的共聚物形态进行比较。该项目报告了模板结构的类型和纳米颗粒的分散性。还研究了颗粒相互作用对微相分离和磁性能的影响。通过理解嵌段共聚物/氧化铁纳米复合材料中的模板机理而获得的知识可以应用于其他类似的体系,以用于各种生物学和催化剂应用。

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    Akcora Pinar;

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  • 年度 2005
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  • 正文语种 en_US
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