Dipartimento di Matematica e Geoscienze Università degli Studi di Trieste Via Weiss 2 1 34127 Trieste Italy.
School of Chemistry Cardiff University Main Building Park Place CF10 3AT Cardiff, Wales UK.
ChemistryOpen. 2020 May 4;9(5):529-544. doi: 10.1002/open.202000045. eCollection 2020 May.
Azobenzene is one of the most studied light-controlled molecular switches and it has been incorporated in a large variety of supramolecular systems to control their structural and functional properties. Given the peculiar isomeric distribution at the photoexcited state (PSS), azobenzene derivatives have been used as photoactive framework to build metastable supramolecular systems that are out of the thermodynamic equilibrium. This could be achieved exploiting the peculiar / photoisomerization process that can lead to isomeric ratios that are unreachable in thermal equilibrium conditions. The challenge in the field is to find molecular architectures that, under given external circumstances, lead to a given isomeric ratio in a reversible and predictable manner, ensuring an ultimate control of the configurational distribution and system composition. By reviewing early and recent works in the field, this review aims at describing photoswitchable systems that, containing an azobenzene dye, display a controlled configurational equilibrium by means of a molecular recognition event. Specifically, examples include programmed photoactive molecular architectures binding cations, anions and H-bonded neutral guests. In these systems the non-covalent molecular recognition adds onto the thermal and light stimuli, equipping the supramolecular architecture with an additional external trigger to select the desired configuration composition.
偶氮苯是研究最多的光控分子开关之一,它已被广泛应用于各种超分子体系中,以控制其结构和功能特性。鉴于光激发态(PSS)的特殊异构分布,偶氮苯衍生物已被用作光活性框架,构建非平衡热力学的亚稳超分子体系。这可以通过利用特殊的光异构化过程来实现,该过程可以导致在热平衡条件下无法达到的异构比。该领域的挑战在于找到在给定的外部环境下,以可逆和可预测的方式导致给定异构比的分子结构,从而最终控制构象分布和系统组成。通过回顾该领域早期和近期的工作,本综述旨在描述含有偶氮苯染料的光致变色体系,通过分子识别事件显示受控的构象平衡。具体来说,这些例子包括编程的光活性分子结构与阳离子、阴离子和氢键中性客体结合。在这些体系中,非共价分子识别增加了热和光刺激,为超分子结构提供了额外的外部触发,以选择所需的构象组成。