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首页> 外文期刊>RSC Advances >Core/shell-structured, covalently bonded TiO2/poly(3,4-ethylenedioxythiophene) dispersions and their electrorheological response: the effect of anisotropy
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Core/shell-structured, covalently bonded TiO2/poly(3,4-ethylenedioxythiophene) dispersions and their electrorheological response: the effect of anisotropy

机译:核/壳结构,共价键合的TiO2 /聚(3,4-乙撑二氧噻吩)分散体及其流变学响应:各向异性的影响

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摘要

As a new electrorheological (ER) material, core/shell nanorods composed of a titania core and conducting polymer poly(3,4-ethylenedioxythiophene) (PEDOT) shell were prepared via covalent bonding to achieve a thin polymer shell and make the interfacial interactions between the two components more impressive. The successful coating of PEDOT on the nanorod-TiO2 particles was confirmed by TEM analysis. The antisedimentation stability of the core/shell nanorod-TiO2/PEDOT particles was determined to be 100%. The ER properties of the materials were studied under controlled shear, oscillatory shear and creep tests. The dielectric spectra of the dispersions were obtained to further understand their ER responses and fitted with the Cole-Cole equation. The ER behavior of the dispersions was also observed using an optical microscope. The flow curves of these ER fluids were determined under various electric field strengths and their flow characteristics examined via a rheological equation using the Cho-Choi-Jhon (CCJ) model. In addition, the results were also compared with nanoparticle-TiO2/PEDOT. It was concluded that the conducting thin polymer shell and elongated structure of the hybrid material introduced a synergistic effect on the electric field induced polarizability and colloidal stability against sedimentation, which resulted in stronger ER activity, storage modulus and higher recovery after stress loadings when compared to nanoparticle-TiO2/PEDOT.
机译:作为一种新的电流变(ER)材料,通过共价键合制备了由二氧化钛核和导电聚合物聚(3,4-乙撑二氧噻吩)(PEDOT)壳组成的核/壳纳米棒,从而获得了一个薄的聚合物壳并使其之间形成界面这两个组成部分更加令人印象深刻。通过TEM分析证实了PEDOT在纳米棒-TiO 2颗粒上的成功涂覆。核/壳纳米棒-TiO2 / PEDOT颗粒的抗沉淀稳定性被确定为100%。在受控剪切,振荡剪切和蠕变测试下研究了材料的ER特性。获得分散体的介电谱以进一步了解其ER响应,并与Cole-Cole方程拟合。还使用光学显微镜观察了分散体的ER行为。在各种电场强度下确定这些ER流体的流动曲线,并使用Cho-Choi-Jhon(CCJ)模型通过流变方程检查其流动特性。另外,还将该结果与纳米颗粒TiO2 / PEDOT进行了比较。结论是,导电薄聚合物壳和杂化材料的细长结构对电场诱导的极化率和胶体稳定性产生了协同作用,从而产生了更强的ER活性,储能模量和应力加载后的较高回复性。纳米颗粒TiO2 / PEDOT。

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