Department of Organic Chemistry, Weizmann Institute of Science, Rehovot 76100, Israel.
Chem Soc Rev. 2014 Jan 7;43(1):148-84. doi: 10.1039/c3cs60181a. Epub 2013 Aug 27.
In the past few years, spiropyran has emerged as the molecule-of-choice for the construction of novel dynamic materials. This unique molecular switch undergoes structural isomerisation in response to a variety of orthogonal stimuli, e.g. light, temperature, metal ions, redox potential, and mechanical stress. Incorporation of this switch onto macromolecular supports or inorganic scaffolds allows for the creation of robust dynamic materials. This review discusses the synthesis, switching conditions, and use of dynamic materials in which spiropyran has been attached to the surfaces of polymers, biomacromolecules, inorganic nanoparticles, as well as solid surfaces. The resulting materials show fascinating properties whereby the state of the switch intimately affects a multitude of useful properties of the support. The utility of the spiropyran switch will undoubtedly endow these materials with far-reaching applications in the near future.
在过去的几年中,螺吡喃作为构建新型动态材料的首选分子而崭露头角。这种独特的分子开关会响应各种正交刺激(例如光、温度、金属离子、氧化还原电势和机械应力)而发生结构互变。将此开关整合到高分子载体或无机支架上,可以创建坚固的动态材料。本综述讨论了螺吡喃在聚合物、生物大分子、无机纳米粒子以及固体表面上的合成、开关条件以及动态材料的应用。所得材料表现出迷人的性质,其中开关的状态密切影响载体的多种有用性质。螺吡喃开关的实用性无疑将使这些材料在不久的将来具有广泛的应用前景。