非对称联苯TADF化合物的合成与发光性质

  • 张雪玥 ,
  • 李丹 ,
  • 苗金玲 ,
  • 李德利 ,
  • 刘广宁 ,
  • 蒋绪川 ,
  • 聂永
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  • a济南大学智能材料与工程研究院,济南 250022;
    b济南大学化学化工学院,济南 250022

收稿日期: 2026-04-27

  修回日期: 2026-06-08

  网络出版日期: 2026-07-06

基金资助

山东省自然科学基金(No.ZR2022MB107)资助项目.

Synthesis and Emission Properties of Unsymmetric Biphenyl TADF Compounds

  • Zhang Xueyue ,
  • Li Dan ,
  • Miao Jinling ,
  • Li Deli ,
  • Liu Guangning ,
  • Jiang Xuchuan ,
  • Nie Yong
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  • aInstitute for Smart Materials & Engineering, University of Jinan, Jinan, 250022;
    bSchool of Chemistry and Chemical Engineering, University of Jinan, Jinan, 250022

Received date: 2026-04-27

  Revised date: 2026-06-08

  Online published: 2026-07-06

Supported by

Natural Science Foundation of Shandong Province (No.ZR2022MB107).

摘要

缺电子的3-硝基-3’-溴-6,6’-二氟联苯二腈与1当量咔唑在碱性条件下发生较为罕见的芳香亲核取代反应, 苯环上的硝基被9-咔唑基取代, 生成化合物1. 分别与2当量咔唑或二叔丁基咔唑反应, 硝基和同一个苯环上的氟原子被(二叔丁基)咔唑基取代, 生成化合物2a,b. 化合物2a与3-甲酰基苯硼酸发生钯催化的Suzuki偶联反应, 生成化合物3. 通过谱学方法、元素分析(2b)、X-射线衍射(2a和3)和密度泛函理论(DFT)方法研究了几个非对称联苯产物1-3的组成和结构, 并对该芳香亲核取代反应的机理进行了讨论. 发光性质研究表明, 化合物1-3均具有热活化延迟荧光(TADF)性质. 本文结果为非对称联苯TADF化合物的设计和合成提供了新思路.

本文引用格式

张雪玥 , 李丹 , 苗金玲 , 李德利 , 刘广宁 , 蒋绪川 , 聂永 . 非对称联苯TADF化合物的合成与发光性质[J]. 有机化学, 0 : 4042 . DOI: 10.6023/cjoc202604042

Abstract

Under basic conditions, the electron-deficient 3-nitro-3'-bromo-6,6'-difluorodicyanobiphenyl undergoes an uncommon nucleophilic aromatic substitution (SNAr) reaction with one equiv. of carbazole, in which the nitro group on the ring is replaced by a 9-carbazolyl, to afford compound 1, whereas in the same reactions with two equiv. of carbazole and ditertbutylcarbazole, respectively, the nitro group and the fluorine atom on the same benzene ring are substituted by 9-carbazolyl or 9-ditertbutylcarbazolyl to produce compounds 2a,b. Compound 2a undergoes a Pd-catalyzed Suzuki coupling with 3-formylphenylboronic acid to give compound 3. The structures and compositions of the products have been studied using spectroscopic methods, elemental analysis (2b), X-ray diffraction (2a and 3), as well as density functional theory (DFT) calculations, and the mechanism of the SNAr reaction is discussed. Investigations on the emission properties show that compounds 1-3 exhibit thermally activated delayed fluorescence (TADF) properties. These results provide new ideas for the design and synthesis of unsymmetric biphenyl TADF compounds.

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