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首页> 外文期刊>RSC Advances >Highly emissive excited-state intramolecular proton transfer (ESIPT) inspired 2-(2 '-hydroxy) benzothiazole-fluorene motifs: spectroscopic and photophysical properties investigation
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Highly emissive excited-state intramolecular proton transfer (ESIPT) inspired 2-(2 '-hydroxy) benzothiazole-fluorene motifs: spectroscopic and photophysical properties investigation

机译:高发光兴奋状态分子内质子转移(ESIPT)启发了2-(2'-羟基)苯并噻唑-芴基序:光谱和光药性调查

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摘要

Tuning or switching of the solid state luminescence of organic materials is an attractive target for both basic research and practical applications. In the present study, solid state emissive compounds with very high quantum efficiencies (Phi(F) up to 68%) were achieved by chemical alteration of the excited state intramolecular proton transfer (ESIPT) 2-2'-hydroxy benzothiazole (HBT) unit. Five ESIPT inspired compounds based on fluorene were synthesized via Suzuki coupling reaction. Their photophysical properties were studied by means of steady state absorption, emission spectra and a time resolved emission method in solid as well as in solution of different polarities. The fluorophores showed absorption in the UV region and emission in the visible region with large Stokes shift (similar to 232 nm). Efficient yellow emissive compounds showed very high quantum yields (Phi(F) = 55-68%) in the solid state, which are the highest quantum yields in the solid state to the best of our knowledge, for fluorene based ESIPT molecules. The fluorescence lifetime in the solid state is between 3.48-5.21 ns, while it is 5-10 fold less in chloroform (0.52-0.75 ns) solution. The optical properties of these compounds are sensitive towards the polarity of the medium. The structural properties, such as Xray single crystal analyses, DSC and TGA were studied, and the lack of stacking and/or hydrogen bonding interactions around HBT motifs reveals enough room for ESIPT in the series of molecules even in their solid state. The DFT computations were performed to support experimental results and the calculations are well in line with the experimental results. These suggest high quantum efficiency ascribed to the large orbital energy difference between HOMOs and LUMOs of enol and keto forms transformed via ESIPT, and hence, singlet energy localization onto the keto form. The intra-molecular charge transfer nature between fluorene and HBT units plays a key role for the localization of energy on HBT motifs in their excited states.
机译:调谐或切换有机材料的固态发光是基础研究和实际应用的有吸引力的目标。在本研究中,通过激发态分子内质子转移(ESIPT)2-2'-羟基苯并噻唑(HBT)单位的化学改变,实现了具有非常高的量子效率(PHI(F)高达68%的PHI(F))的发光化合物。通过铃木偶联反应合成基于芴的五种ESIPT激发的化合物。通过稳态吸收,发射光谱和固体分辨的排放方法以及不同极性的溶液研究了它们的光物理性质。荧光团在UV区域中吸收和具有大的斯托克斯偏移的可见区域中的发射(类似于232nm)。高效的黄色发射化合物在固态中显示出非常高的量子产率(PHI(F)= 55-68%),这是我们所知的固态中的最高量子产率,对于氟化烯的eSipt分子。固态中的荧光寿命在3.48-5.21ns之间,而氯仿(0.52-0.75 ns)溶液少5-10倍。这些化合物的光学性质对介质的极性敏感。研究了X射线单晶分析,DSC和TGA的结构性质,并且缺乏HBT基序周围的堆叠和/或氢键相互作用,即使在它们的固态中也揭示了足够的eSipt中的eSipt。进行DFT计算以支持实验结果,计算符合实验结果。这些表明,通过ESIPT转化的HomoS和巢穴与KETO形式之间的大轨道能量差异的高量子效率,因此单次能量定位在Keto形式上。芴和HBT单元之间的分子内电荷转移性质在其激发态中的HBT主题上的能量局部发挥着关键作用。

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  • 来源
    《RSC Advances》 |2015年第98期|共14页
  • 作者单位

    Kyoto Univ Grad Sch Engn Dept Mol Engn Nishikyo Ku Kyoto 6158510 Japan;

    Kyoto Univ Grad Sch Engn Dept Mol Engn Nishikyo Ku Kyoto 6158510 Japan;

    Osaka Univ Grad Sch Engn Dept Mat &

    Life Sci Suita Osaka 5650871 Japan;

    Tohoku Univ Inst Multidisciplinary Res Adv Mat Sendai Miyagi 9808577 Japan;

    Chitose Inst Sci &

    Technol Dept Bio &

    Mat Photon Chitose 0668655 Japan;

    Kyoto Univ Grad Sch Engn Dept Mol Engn Nishikyo Ku Kyoto 6158510 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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