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Study on Optoelectronic Properties of Spiro-CN for Developing an Efficient OLED

机译:螺旋CN开发高效OLED的光电性能研究

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There are a class of organic molecules and polymers which exhibit semiconductor behavior because of nearly free conjugate π-electrons. Hopping of these electrons in molecules forms different excited singlet and triplet states named as excitons. Some of these organic molecules can be set to emit photons by triplet-singlet excitonic transition via a process called Thermally Activated Delayed Fluorescence (TADF) which is exploited for designing tlie Organic Light Emitting diode (OLED.) Spiro-CN (spirobifluorene skeletons) Spiro is one of these reported noble metal-free TADF molecules which offers unique optical and electronic properties arising from the efficient transition and reverse intersystem crossing between the lowest singlet (S) and triplet (T) excited states. Its ability to harvest triplet excitons for fluorescence through facilitated reverse intersystem crossing (T →S) could directly impact their properties and performances, which is attractive for a wide variety of low-cost optoelectronic device. In the present study, the Spiro-CN compounds have been taken up for the investigation of various optoelectronic properties including the thermally activated delayed fluorescence (TADF) by using the Koopmans Method and Density Functional Theory. The present study discusses the utility of the Spiro-CN organic semiconductor as a suitable TADF material essential for developing an efficient Organic Light Emitting Diode (OLED).
机译:由于几乎非自由的共轭π - 电子,有一类具有展示半导体行为的有机分子和聚合物。这些电子在分子中的跳跃形成不同的激发态单曲和三重态态,名称为激子。这些有机分子中的一些可以通过三重态 - 单线发射型转变通过称为热活化的延迟荧光(TADF)的方法来发射光子,这被利用用于设计TLIE有机发光二极管(OLED。)螺旋CN(螺氟烯骨架)螺旋是这些报告的贵金属塔德夫分子之一,它提供了从最低单次单态和三联(T)激发态之间的有效转变和反向交叉系统的独特的光学和电子性质。它通过促进反向交叉系统交叉(T→S)来收获Triplet激子对荧光的能力可以直接影响它们的性能和性能,这对于各种低成本的光电器件具有吸引力。在本研究中,已经通过使用Koopmans方法和密度泛函理论,对螺旋-CN化合物进行了调查,该化合物在包括热活化的延迟荧光(TADF)的各种光电性能。本研究讨论了螺旋CN有机半导体作为合适的TADF材料的效用,其用于开发有效的有机发光二极管(OLED)。

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