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A New Class of Rigid Multi(azobenzene) Switches Featuring Electronic Decoupling: Unravelling the Isomerization in Individual Photochromes

机译:一类新的刚性多(偶氮)开关,具有电子解耦:解开单个光晶体中的异构化

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摘要

We report a novel class of star-shaped multiazobenzene photoswitches comprising individual photochromes connected to a central trisubstituted 1,3,5-benzene core. The unique design of such C-3-symmetric molecules, consisting of conformationally rigid and pseudoplanar scaffolds, made it possible to explore the role of electronic decoupling in the isomerization of the individual azobenzene units. The design of our tris-, bis-, and mono(azobenzene) compounds limits the pi-conjugation between the switches belonging to the same molecule, thus enabling the efficient and independent isomerization of each photochrome. An in-depth experimental insight by making use of different complementary techniques such as UV-vis absorption spectroscopy, high performance liquid chromatography, and advanced mass spectrometry methods as ion mobility revealed an almost complete absence of electronic delocalization. Such evidence was further supported by both experimental (electrochemistry, kinetical analysis) and theoretical (DFT calculations) analyses. The electronic decoupling provided by this molecular design guarantees a remarkably efficient photoswitching of all azobenzenes, as evidenced by their photoisomerization quantum yields, as well as by the Z-rich UV photostationary states. Ion mobility mass spectrometry was exploited for the first time to study multiphotochromic compounds revealing the occurrence of a large molecular shape change in such rigid star-shaped azobenzene derivatives. In view of their high structural rigidity and efficient isomerization, our multiazobenzene photoswitches can be used as key components for the fabrication of complex stimuli-responsive porous materials.
机译:我们报告了一种新型的星形多唑片光学接口,其包含连接到中央三取代的1,3,5-苯核的单独光晶。由构象刚性和假性的支架组成的这种C-3对称分子的独特设计使得可以探讨电子去耦在单个偶氮苯单元的异构化中的作用。我们的TRIS - ,BIS-和单体(偶氮烯)化合物的设计限制了属于同一分子的开关之间的PI缀合,从而能够实现每个光铬的有效和独立的异构化。通过使用不同的互补技术,例如UV-Vis吸收光谱,高性能液相色谱和先进的质谱方法,作为离子迁移率的不同互补技术,揭示了几乎完全没有电子临床化。通过实验(电化学,菌道分析)和理论(DFT计算)分析进一步支持这些证据。通过该分子设计提供的电子去耦保证了所有偶氮苯的显着高效的光学开养,如其光学化量子产率和富含Z的紫外光涡极性状态所证明。首次利用离子迁移率质谱法研究多色体化合物,揭示这种刚性星形偶氮衍生物中大分子形状变化的发生。鉴于其高结构刚性和高效异构化,我们的多氮苯苯容件可用作制备复杂刺激响应多孔材料的关键部件。

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  • 来源
    《Journal of the American Chemical Society》 |2019年第23期|9273-9283|共11页
  • 作者单位

    Univ Strasbourg CNRS ISIS UMR 7006 8 Allee Gaspard Monge F-67000 Strasbourg France;

    KIT Inst Nanotechnol POB 3640 D-76021 Karlsruhe Germany;

    Univ Basel Dept Chem St Johannsring 19 CH-4056 Basel Switzerland;

    Univ Mons Organ Synth & Mass Spectrometry Lab Pl Parc 20 B-7000 Mons Belgium;

    Univ Mons Lab Chem Novel Mat Pl Parc 20 B-7000 Mons Belgium;

    KIT Inst Nanotechnol POB 3640 D-76021 Karlsruhe Germany;

    Univ Mons Organ Synth & Mass Spectrometry Lab Pl Parc 20 B-7000 Mons Belgium;

    Univ Mons Lab Chem Novel Mat Pl Parc 20 B-7000 Mons Belgium;

    Univ Mons Organ Synth & Mass Spectrometry Lab Pl Parc 20 B-7000 Mons Belgium;

    KIT Inst Nanotechnol POB 3640 D-76021 Karlsruhe Germany|Univ Basel Dept Chem St Johannsring 19 CH-4056 Basel Switzerland|SYSU Sch Chem Lehn Inst Funct Mat LFM Guangzhou 510275 Guangdong Peoples R China;

    Univ Strasbourg CNRS ISIS UMR 7006 8 Allee Gaspard Monge F-67000 Strasbourg France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 22:16:40

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