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自组装偶氮苯-硅氧烷杂化材料的光致弯曲。

Photoinduced Bending of Self-Assembled Azobenzene-Siloxane Hybrid.

机构信息

Institute for Nanoscience & Technology, Waseda University , 513 Wasedatsurumaki-cho, Shinjuku-ku, Tokyo 162-0041, Japan.

Electronic Materials Research Division, Osaka Municipal Technical Research Institute , 1-6-50 Morinomiya, Joto-ku, Osaka 536-8553, Japan.

出版信息

J Am Chem Soc. 2015 Dec 16;137(49):15434-40. doi: 10.1021/jacs.5b06172. Epub 2015 Dec 3.

Abstract

A novel azobenzene-siloxane hybrid material displaying photoinduced macroscopic motions has been prepared by one-step organosilane self-assembly. Two types of alkoxysilane precursors with either pendant or bridging azobenzene groups were synthesized via thiol-ene click reactions. Hybrid films with well-ordered lamellar structures were obtained by hydrolysis and polycondensation of these precursors. The film with solely pendant azobenzene groups showed reversible and rapid d-spacing variation upon UV-vis irradiation, which was induced by the trans-cis isomerization of azobenzene moieties. The flexible, free-standing film obtained by co-condensation of two types of precursors showed reversible bending-unbending motions upon UV-vis irradiation. The partial cross-linking between the siloxane layers by bridging azobenzene groups was crucial for photoinduced distortion of the film. This film possesses high elastic modulus, good thermal stability, and shows large amplitude of photoinduced bending-unbending over a wide temperature range. This is the first report on photoinduced macroscopic motions of azobenzene-containing siloxane-based materials. These materials possess great potential for applications in smart devices and energy conversion systems.

摘要

一种通过一步有机硅自组装制备的具有光致宏观运动的新型偶氮苯-硅氧烷杂化材料。通过硫醇-烯点击反应合成了两种带有侧挂或桥联偶氮苯基团的烷氧基硅烷前体。这些前体的水解和缩聚得到了具有有序层状结构的杂化薄膜。仅带有侧挂偶氮苯基团的薄膜在紫外-可见辐照下表现出可逆和快速的 d 间距变化,这是由偶氮苯部分的顺反异构化引起的。由两种类型的前体制备的共缩聚物得到的柔性、自立的薄膜在紫外-可见辐照下表现出可逆的弯曲-伸直运动。桥联偶氮苯基团在硅氧烷层之间的部分交联对于薄膜的光致变形至关重要。该薄膜具有高弹性模量、良好的热稳定性,并在较宽的温度范围内表现出大振幅的光致弯曲-伸直运动。这是首例关于含偶氮苯的硅氧烷基材料的光致宏观运动的报道。这些材料在智能器件和能量转换系统中有很大的应用潜力。

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