Advanced Materials and Liquid Crystal Institute and Chemical Physics Interdisciplinary Program, Kent State University, Kent, Ohio, 44242, USA.
Department of Chemistry, Faculty of Science, Tanta University, Tanta, El-Gharbia, 31527, Egypt.
Chemistry. 2022 Mar 28;28(18):e202103906. doi: 10.1002/chem.202103906. Epub 2022 Jan 28.
Inspired by human vision, a diverse range of light-driven molecular switches and motors have been developed for fundamental understanding and application in material science and biology. Recently, the design and synthesis of visible light-driven molecular switches and motors have been actively pursued. This emerging trend is partly motivated to avoid the harmful effects of ultraviolet light, which was necessary to drive the classical molecular switches and motors at least in one direction, impeding their employment in biomedical and photopharmacology applications. Moreover, visible light-driven molecular switches and motors are demonstrated to enable benign optical materials for advanced photonic devices. Therefore, during the past several years, visible light-driven molecular switches based on azobenzene derivatives, diarylethenes, 1,2-dicyanodithienylethenes, hemithioindigo derivatives, iminothioindoxyls, donor-acceptor Stenhouse adducts, and overcrowded alkene based molecular motors have been judiciously designed, synthesized, and used in the development of functional materials and systems for a wide range of applications. In this Review, we present the recent developments toward the design of visible light-driven molecular switches and motors, with their applications in the fabrication of functional materials and systems in material science, bioscience, pharmacology, etc. The visible light-driven molecular switches and motors realized so far undoubtedly widen the scope of these interesting compounds for technological and biological applications. We hope this Review article could provide additional impetus and inspire further research interests for future exploration of visible light-driven advanced materials, systems, and devices.
受人类视觉的启发,已经开发出了各种光驱动的分子开关和马达,以用于材料科学和生物学中的基础理解和应用。最近,可见光驱动的分子开关和马达的设计和合成受到了积极的研究。这种新兴趋势的部分动机是为了避免紫外线的有害影响,紫外线至少在一个方向上驱动经典的分子开关和马达,阻碍了它们在生物医学和光药理学应用中的应用。此外,可见光驱动的分子开关和马达被证明可以为先进的光子器件提供良性的光学材料。因此,在过去的几年中,基于偶氮苯衍生物、二芳基乙烯、1,2-二氰基二噻烯、半硫靛衍生物、亚胺硫代吲哚、供体-受体 Stenhouse 加合物和拥挤烯烃基分子马达的可见光驱动分子开关已经被巧妙地设计、合成,并用于开发用于各种应用的功能材料和系统。在这篇综述中,我们介绍了设计可见光驱动分子开关和马达的最新进展,以及它们在材料科学、生物科学、药理学等领域的功能材料和系统制造中的应用。迄今为止实现的可见光驱动分子开关和马达无疑拓宽了这些有趣化合物在技术和生物应用中的范围。我们希望这篇综述文章能够为未来探索可见光驱动的先进材料、系统和设备提供额外的动力,并激发进一步的研究兴趣。