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芳基硼酸酯中的杂质引发持续余辉。

Impurities in Arylboronic Esters Induce Persistent Afterglow.

作者信息

Wu Zhu, Herok Christoph, Friedrich Alexandra, Engels Bernd, Marder Todd B, Hudson Zachary M

机构信息

Institute of Inorganic Chemistry and Institute for Sustainable Chemistry & Catalysis with Boron, Julius-Maximilians-Universität Würzburg, Am Hubland, 97074 Würzburg, Germany.

Department of Chemistry, The University of British Columbia, Vancouver, British Columbia V6T 1Z1, Canada.

出版信息

J Am Chem Soc. 2024 Nov 20;146(46):31507-31517. doi: 10.1021/jacs.4c08329. Epub 2024 Nov 5.

Abstract

Several recent reports suggest that arylboronic esters can exhibit room temperature phosphorescence (RTP), an optical property that is desirable for applications in security printing, oxygen sensing, and bioimaging. These findings challenged the fundamental notion that heavy elements or changes in orbital symmetry were required for intersystem crossing to occur in organic compounds. As we had not observed long afterglow in the many arylboronic esters we had synthesized over many years, we suspected that the RTP observed in these systems had a simpler explanation: the materials reported were impure. Herein, we synthesized 12 arylboronic esters that were previously reported to show RTP, and carefully purified them by column chromatography, recrystallization, and sublimation. We re-examined their photophysical properties alongside single-crystal X-ray diffraction analysis and detailed theoretical studies. While 4 of the 12 compounds showed long afterglows as crude products, none of them showed persistent RTP after careful purification. We also successfully isolated the impurity 4-amino-3,5-bis(pinacolatoboryl)benzonitrile (), identifying it as the impurity responsible for inducing delayed fluorescence in 3,5-bis(pinacolatoboryl)benzonitrile (). Doping with 1.0 mol % led to a persistent afterglow with a lifetime of 67 ms, which is mediated by a dimer charge transfer state. Our findings call for a re-examination of previous studies reporting RTP from arylboronic esters, highlight the importance of careful purification in photophysical research, and provide a practical strategy for designing organic materials with a long afterglow.

摘要

最近的几份报告表明,芳基硼酸酯可呈现室温磷光(RTP),这是一种在安全印刷、氧传感和生物成像应用中备受青睐的光学特性。这些发现挑战了一个基本观念,即有机化合物中发生系间窜越需要重元素或轨道对称性的改变。由于我们在多年合成的众多芳基硼酸酯中未观察到长余辉现象,我们怀疑这些体系中观察到的RTP有一个更简单的解释:所报道的材料不纯。在此,我们合成了12种先前报道显示RTP的芳基硼酸酯,并通过柱色谱、重结晶和升华对其进行了仔细纯化。我们结合单晶X射线衍射分析和详细的理论研究重新审视了它们的光物理性质。虽然12种化合物中的4种作为粗产物显示出长余辉,但经过仔细纯化后,它们均未显示出持久的RTP。我们还成功分离出杂质4-氨基-3,5-双(频哪醇硼酸酯基)苯甲腈(),确定它是导致3,5-双(频哪醇硼酸酯基)苯甲腈产生延迟荧光的杂质。用1.0 mol%的掺杂导致了寿命为67 ms的持久余辉,这是由二聚体电荷转移态介导的。我们的研究结果呼吁重新审视先前关于芳基硼酸酯RTP的研究,强调了在光物理研究中仔细纯化的重要性,并提供了一种设计具有长余辉有机材料的实用策略。

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