磷光
磷光有机发光二极管
电致发光
材料科学
有机发光二极管
准分子
单重态
量子效率
激子
分子间力
光化学
三重态
光电子学
分子
荧光
原子物理学
激发态
化学
物理
纳米技术
光学
凝聚态物理
有机化学
图层(电子)
作者
Xiaomin Guo,Peisen Yuan,Xianfeng Qiao,Dezhi Yang,Yanfeng Dai,Qian Sun,Dongge Ma
标识
DOI:10.1002/adom.202000991
摘要
Abstract Phosphorescent organic light‐emitting diodes (PhOLEDs) using exciplexes as host have achieved unprecedented breakthrough. The energy transfer process between host and guest is the popular way to effectively utilize excitons in this kind of devices. Actually, the intermolecular spin–orbital coupling (ISOC) interaction between the heavy‐atom phosphorescent molecule and exciplex also plays an important role in exciton utilization, thus device performance, but this role is always ignored. Here, the synergistic effects of energy transfer and ISOC interaction on device efficiency are clearly demonstrated in exciplex‐based PhOLEDs by magneto‐electroluminescence (MEL) measurements. It can be seen that the MEL line shape at high field component is significantly wider due to the ISOC effect inducing the accelerated transition process between singlet and triplet states of exciplex host. In this case, the energy transfer process from exciplex host to phosphorescent molecule is more efficient, which is confirmed by the different line widths of MELs. Ultimately, a high‐efficiency exciplex‐based green PhOLED with the maximum external quantum efficiency of 23% is obtained at a low phosphorescent doping concentration of 2 wt%.
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