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Mesostructured Silica Supports for Functional Materials and Molecular Machines

机译:功能材料和分子机器的介孔二氧化硅载体

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摘要

Mesostructured silica thin films and particles prepared by surfactant-templated sol-gel techniques are highly versatile substrates for the formation of functional materials. The ability to deliberately place molecules possessing desired activities in specific spatially separated regions of the nanostructure is an important feature of these materials. Such placement utilizes strategies that exploit the physical and chemical differences between the silica framework and the templated pores. As an example of placement of pairs of molecules, donor and acceptor molecules can be targeted to different regions of mesostructured thin films and energy transfer between them can be measured. The results not only demonstrate the spatial separation but also are used as a molecular ruler to measure the average distance between them. Mesostructured silica is also an excellent support for molecular machines. Molecules that undergo large amplitude motion, when attached to the silica, can function as impellers and nanovalves when activated by light, electrical (redox) and chemical (pH, competitive binding) energy. Derivatized azobenzene molecules, attached to pore walls by using one of the placement strategies, function as impellers that can move other molecules through the pores. Rotaxanes and pseudorotaxanes, placed at pore entrances, function as gatekeepers that can trap and release molecules from the pores when stimulated. Deliberately placed functional molecules on and in mesostructured silica offer many possibilities for both fundamental studies on the nanoscale and for applications in fields as diverse as fluidics, biological drug delivery and controlled release.
机译:通过表面活性剂模板的溶胶-凝胶技术制备的介孔结构二氧化硅薄膜和颗粒是用于形成功能材料的高度通用的基材。故意将具有所需活性的分子放置在纳米结构的特定空间分隔区域中的能力是这些材料的重要特征。这种放置利用了利用二氧化硅骨架和模板孔之间的物理和化学差异的策略。作为分子对放置的一个例子,施主和受主分子可以靶向介观薄膜的不同区域,并且可以测量它们之间的能量转移。结果不仅证明了空间分离,而且还用作分子标尺来测量它们之间的平均距离。介孔结构的二氧化硅也是分子机器的出色支持。分子发生较大幅度的运动,当它们附着在硅胶上时,当被光,电能(氧化还原)和化学(pH,竞争结合)能量激活时,可以充当叶轮和纳米阀。通过使用一种放置策略连接到孔壁的衍生化的偶氮苯分子起着推动器的作用,可以使其他分子移动通过孔。轮状烷和假轮烷位于孔的入口,起着守门人的作用,当受到刺激时,它们可以捕获并释放孔中的分子。在介孔结构的二氧化硅上和之中故意放置功能分子为纳米级基础研究以及在流体学,生物药物传递和控释等领域的应用提供了许多可能性。

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