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Development of benzylidene-methyloxazolone based AIEgens and decipherment of their working mechanism

机译:基于苄基 - 甲氧唑酮的抗性和其工作机制的解密

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摘要

Based on an analogue of green fluorescent protein chromophore benzylidene-methyloxazolone (BMO), a series of fluorophores with an additional phenyl group, BMO-PH, BMO-PF, BMO-PM and BMO-PC, have been prepared and are found to be AIE-active. Their solutions are weakly emissive and their aggregation or solid states are highly emissive. Although these compounds readily undergo efficient E/Z isomerization (EZI) upon UV irradiation in solution, the intramolecular rotation around the double bond and phenyl rotation around the single bond serve as the key non-radiative decay channels to dissipate the excited-state energies. The EZI is only the phenomenal result. In aggregates, these intramolecular motions are greatly restricted by multiple intermolecular interactions, resulting in the AIE effect. To ensure a high solid-state quantum yield, prevention of detrimental pi-pi stacking is of essence. An additional phenyl group to BMO is found to increase the pi-pi distance and weaken the pi-pi interaction. Thus, the quantum yields are increased. Strong electron-donating groups and extended conjugation are effective at tuning the emission color bathochromically. Based on these principles, we succeeded in increasing the solid-state quantum yield up to 50% and obtaining a red emission maximum of 635 nm. Moreover, these compounds are promising for applications in photoswitches and fluorescent patterns, and their crystals are good candidates for luminescent waveguides with low light loss efficiency.
机译:基于绿色荧光蛋白发色团苄基甲氧唑酮(BMO)的类似物,已经制备了一系列具有额外苯基,BMO-pH,BMO-PF,BMO-PM和BMO-PC的一系列荧光团并发现AIE活跃。它们的解决方案是弱发射,它们的聚集或固态是高度发光性的。尽管这些化合物在溶液中静电照射时容易地进行高效的E / Z异构化(EZI),但是在单键周围的双键和苯基旋转周围的分子内旋转用作键的非辐射衰减通道以消散激发状态能量。 EZI只是现象结果。在聚集体中,这些分子内运动极大地受到多个分子间相互作用的大大限制,导致AIE效应。为了确保高固氮量子产量,预防有害的PI-PI堆叠是精华的。发现额外的苯基至BMO增加PI-PI距离并削弱PI-PI相互作用。因此,量子产率增加。强助电子组和扩展缀合在碱基上调整发光颜色时有效。基于这些原则,我们成功地增加了高达50%的固态量子产率,并获得最多635nm的红色发射。此外,这些化合物对光照和荧光图案中的应用是有前途的,并且它们的晶体是具有低光损失效率的发光波导的良好候选。

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    Hong Kong Univ Sci &

    Technol State Key Lab Mol Neurosci Div Life Sci Dept Chem Inst Mol Funct Mat Div Biomed Engn HKUST Jockey C Hong Kong Branch Chinese Natl Engn Res Ctr Tissue Kowloon Hong Kong Peoples R China;

    Hong Kong Univ Sci &

    Technol State Key Lab Mol Neurosci Div Life Sci Dept Chem Inst Mol Funct Mat Div Biomed Engn HKUST Jockey C Hong Kong Branch Chinese Natl Engn Res Ctr Tissue Kowloon Hong Kong Peoples R China;

    Hong Kong Univ Sci &

    Technol Dept Phys Kowloon Hong Kong Peoples R China;

    Hong Kong Univ Sci &

    Technol State Key Lab Mol Neurosci Div Life Sci Dept Chem Inst Mol Funct Mat Div Biomed Engn HKUST Jockey C Hong Kong Branch Chinese Natl Engn Res Ctr Tissue Kowloon Hong Kong Peoples R China;

    Hong Kong Univ Sci &

    Technol State Key Lab Mol Neurosci Div Life Sci Dept Chem Inst Mol Funct Mat Div Biomed Engn HKUST Jockey C Hong Kong Branch Chinese Natl Engn Res Ctr Tissue Kowloon Hong Kong Peoples R China;

    Chinese Acad Sci BNLMS Inst Chem Beijing 100190 Peoples R China;

    Hong Kong Univ Sci &

    Technol Dept Phys Kowloon Hong Kong Peoples R China;

    Hong Kong Univ Sci &

    Technol State Key Lab Mol Neurosci Div Life Sci Dept Chem Inst Mol Funct Mat Div Biomed Engn HKUST Jockey C Hong Kong Branch Chinese Natl Engn Res Ctr Tissue Kowloon Hong Kong Peoples R China;

    Chinese Acad Sci BNLMS Inst Chem Beijing 100190 Peoples R China;

    Hong Kong Univ Sci &

    Technol State Key Lab Mol Neurosci Div Life Sci Dept Chem Inst Mol Funct Mat Div Biomed Engn HKUST Jockey C Hong Kong Branch Chinese Natl Engn Res Ctr Tissue Kowloon Hong Kong Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
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