首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Trend breaking substitution pattern of phenothiazine with acceptors as a rational design platform for blue emitters
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Trend breaking substitution pattern of phenothiazine with acceptors as a rational design platform for blue emitters

机译:吩噻嗪的趋势突破取代模式与受体作为蓝色发射体的合理设计平台

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To investigate the effect of unusual substitutions in the phenothiazine core toward the development of deep blue emitters, two compounds have been designed and synthesized by integrating electron donor and electron acceptor units in a nonconventional fashion. Compared with the conventional strategy, we brought two acceptor units in para-relationship to each other on the phenothiazine backbone. Noticeably, emission was shifted hypsochromically to 430 nm in compound 3 from 480 nm, as observed for compound 2. Theoretical studies also provided a deep insight into the excitation and emission properties of the studied compounds. Frontier molecular orbitals and natural transition orbitals revealed that the extent of conjugation in compound 3 was much limited compared to 2. Single crystal X-ray studies helped to predict the packing modes of these compounds in relation to the substitution pattern. The butterfly angle in phenothiazine was found to be the lowest in compound 3. The phenothiazine ring was found to attain a plane perpendicular to the plane of the rest of molecule in 3 which was responsible to delimit the intermolecular stacking at the molecular level. The solution processed devices gave external quantum efficiencies of 2.7% and 1.6% with Commission Internationale de L'Eclairage (CIE) coordinates of 0.16, 0.13 and 0.16, 0.09 for devices using 2 and 3 as the dopant in the host matrix respectively. These results indicate that the introduction of acceptors in para-relationship on the phenothiazine core is a promising design strategy towards deep blue emitters.
机译:为了研究吩噻嗪核心中异常取代对深蓝色发射体发展的影响,通过以非常规方式集成电子供体和电子受体单元,设计并合成了两种化合物。与常规策略相比,我们在吩噻嗪主链上彼此带来了对位关系中的两个受体单元。值得注意的是,如化合物2所观察到的那样,化合物3的发射光从480 nm变色移至430 nm。理论研究还提供了对所研究化合物的激发和发射性质的深刻见解。前沿分子轨道和自然过渡轨道表明,与2相比,化合物3的共轭程度受到很大限制。单晶X射线研究有助于预测这些化合物与取代模式相关的堆积方式。发现吩噻嗪中的蝶形角在化合物3中是最低的。发现吩噻嗪环达到一个垂直于3中其余分子平面的平面,该平面负责在分子水平上限制分子间的堆积。对于使用2和3作为掺杂剂的器件,经溶液处理的器件的外部量子效率分别为2.7%和1.6%,对于国际照明委员会(CIE)坐标为0.16、0.13和0.16、0.09。这些结果表明在吩噻嗪核心上的对位关系中引入受体是针对深蓝色发射体的一种有前途的设计策略。

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