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首页> 外文期刊>Advanced Functional Materials >Photoinduced Shuttling Dynamics of Rotaxanes in Viscous Polymer Solutions
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Photoinduced Shuttling Dynamics of Rotaxanes in Viscous Polymer Solutions

机译:轮状烷在粘性聚合物溶液中的光诱导穿梭动力学

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摘要

The effect of external friction, caused by medium viscosity, on the photoinduced transtational motion in a rotaxane-based molecular shuttle 1 is investigated. The shuttle is successfully operated in solutions of poly(methacrylonitrile) (PMAN) of different molecular weights in MeCN and PrCN. The viscosity of the medium is tuned by changing the PMAN concentration. The rheological behavior of the polymer solution gives insight into the structure of the polymer solution on the microscopic scale. In PrCN, the entanglement regime is reached at lower concentration than in MeCN. This is also reflected by the effect on the shuttling: in the PrCN/PMAN system, a larger viscosity effect is observed compared to MeCN/PMAN. The shuttle is found to be slowed down in the polymer solutions but is still active at high viscosities. The observed retardation effect on the kinetics of shuttling in MeCN/PMAN and PrCN/PMAN can be correlated to the PMAN concentration through the hydrodynamic scaling model. The Stokes-Einstein relationship proves inadequate to correlate the shuttling rates to macroscopic viscosity, but the dependence of the shuttling rate on the bulk viscosity fits well to a commonly observed power-law relationship. The viscosity effect on the shuttling is found to be weak in all cases.
机译:研究了由中等粘度引起的外摩擦对基于轮烷的分子穿梭体1中光诱导的平移运动的影响。航天飞机在MeCN和PrCN中不同分子量的聚(甲基丙烯腈)(PMAN)溶液中成功运行。通过改变PMAN浓度可以调节培养基的粘度。聚合物溶液的流变行为可以在微观尺度上洞察聚合物溶液的结构。在PrCN中,纠缠态的浓度低于在MeCN中的纠缠态。这也反映在穿梭效应上:在PrCN / PMAN系统中,与MeCN / PMAN相比,观察到更大的粘度效应。发现在聚合物溶液中穿梭速度减慢,但在高粘度下仍具有活性。通过水动力学比例模型,可以观察到对MeCN / PMAN和PrCN / PMAN中穿梭动力学的阻滞作用与PMAN浓度相关。斯托克斯-爱因斯坦关系被证明不足以使穿梭速率与宏观粘度相关联,但是穿梭速率对本体粘度的依赖性很好地符合通常观察到的幂律关系。在所有情况下,发现对穿梭的粘度影响都很弱。

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  • 来源
    《Advanced Functional Materials 》 |2009年第21期| 3440-3449| 共10页
  • 作者单位

    Van't Hoff Institute for Molecular Sciences University of Amsterdam Nieuwe Achtergracht 129, 1018 WS Amsterdam (The Netherlands);

    Van't Hoff Institute for Molecular Sciences University of Amsterdam Nieuwe Achtergracht 129, 1018 WS Amsterdam (The Netherlands);

    Van't Hoff Institute for Molecular Sciences University of Amsterdam Nieuwe Achtergracht 129, 1018 WS Amsterdam (The Netherlands);

    Van't Hoff Institute for Molecular Sciences University of Amsterdam Nieuwe Achtergracht 129, 1018 WS Amsterdam (The Netherlands) University of Cambridge, Department of Physics, Cavendish Laboratory, Madingley Road, Cambridge CB3 OHE, UK and BP Institute, Madingley Road, Cambridge CB3 OZE, UK;

    School of Chemistry University of Edinburgh King's Buildings, West Mains Road, Edinburgh EH9 3JJ (UK);

    School of Chemistry University of Edinburgh King's Buildings, West Mains Road, Edinburgh EH9 3JJ (UK);

    Van't Hoff Institute for Molecular Sciences University of Amsterdam Nieuwe Achtergracht 129, 1018 WS Amsterdam (The Netherlands);

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