Muruganantham Subramanian, Velmurugan Gunasekaran, Jesuraj Justin, Hafeez Hassan, Ryu Seung Yoon, Venuvanalingam Ponnambalam, Renganathan Rajalingam
School of Chemistry, Bharathidasan University Tiruchirappalli-620 024 Tamil Nadu India
School of Display and Semiconductor Physics, Display Convergence, College of Science and Technology, Korea University Sejong Campus 2511 Sejong-ro Sejong City 30019 Republic of Korea
RSC Adv. 2019 May 9;9(25):14544-14557. doi: 10.1039/c8ra10448d. eCollection 2019 May 7.
Herein, we have synthesized 4,5-diphenyl-1-imidazole and 2-(1-indol-3-yl)acetonitrile based donor-π-acceptor fluorophores and studied their optical, thermal, electroluminescence properties. Both the fluorophores exhibit high fluorescence quantum yield ( = <0.6) and good thermal stability ( = <300 °C), and could be excellent candidates for OLED applications. Moreover, the ground and excited state properties of the compounds were analysed in various solvents with different polarities. The geometric and electronic structures of the fluorophores in the ground and excited states have been studied using density functional theory (DFT) and time-dependent density functional theory (TDDFT) methods. The absorption of BIPIAN and BITIAN in various solvents corresponds to S → S transitions and the most intense bands with respect to the higher oscillator strengths are mainly contributed by HOMO → LUMO transition. Significantly, the vacuum deposited non-doped OLED device was fabricated using BITIAN as an emitter, and the device shows electroluminescence (EL) at 564 nm, maximum current efficiency (CE) 0.687 cd A and a maximum external quantum efficiency (EQE) of 0.24%.
在此,我们合成了基于4,5-二苯基-1-咪唑和2-(1-吲哚-3-基)乙腈的供体-π-受体荧光团,并研究了它们的光学、热学和电致发光性质。这两种荧光团均表现出高荧光量子产率(= <0.6)和良好的热稳定性(= <300°C),并且可能是有机发光二极管(OLED)应用的优秀候选材料。此外,还在不同极性的各种溶剂中分析了这些化合物的基态和激发态性质。使用密度泛函理论(DFT)和含时密度泛函理论(TDDFT)方法研究了荧光团在基态和激发态的几何和电子结构。BIPIAN和BITIAN在各种溶剂中的吸收对应于S→S跃迁,且具有较高振子强度的最强吸收带主要由HOMO→LUMO跃迁贡献。值得注意的是,以BITIAN作为发光体制备了真空沉积的非掺杂OLED器件,该器件在564nm处显示电致发光(EL),最大电流效率(CE)为0.687 cd/A,最大外量子效率(EQE)为0.24%。