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Carrier Injection and Transport in Blue Phosphorescent Organic Light-Emitting Device with Oxadiazole Host

机译:含恶二唑主体的蓝色磷光有机发光器件中的载流子注入和输运

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摘要

In this paper, we investigate the carrier injection and transport characteristics in iridium(III)bis[4,6-(di-fluorophenyl)-pyridinato-N,C2′]picolinate (FIrpic) doped phosphorescent organic light-emitting devices (OLEDs) with oxadiazole (OXD) as the bipolar host material of the emitting layer (EML). When doping Firpic inside the OXD, the driving voltage of OLEDs greatly decreases because FIrpic dopants facilitate electron injection and electron transport from the electron-transporting layer (ETL) into the EML. With increasing dopant concentration, the recombination zone shifts toward the anode side, analyzed with electroluminescence (EL) spectra. Besides, EL redshifts were also observed with increasing driving voltage, which means the electron mobility is more sensitive to the electric field than the hole mobility. To further investigate carrier injection and transport characteristics, FIrpic was intentionally undoped at different positions inside the EML. When FIrpic was undoped close to the ETL, driving voltage increased significantly which proves the dopant-assisted-electron-injection characteristic in this OLED. When the undoped layer is near the electron blocking layer, the driving voltage is only slightly increased, but the current efficiency is greatly reduced because the main recombination zone was undoped. However, non-negligible FIrpic emission is still observed which means the recombination zone penetrates inside the EML due to certain hole-transporting characteristics of the OXD.
机译:在本文中,我们研究了铱(III)双[4,6-(二氟苯基)-吡啶并-N,C2']吡啶甲酸(FIrpic)掺杂的磷光有机发光器件(OLED)中的载流子注入和输运特性。用恶二唑(OXD)作为发射层(EML)的双极性主体材料。当在OXD内部掺杂Firpic时,OLED的驱动电压会大大降低,因为FIrpic掺杂剂有助于电子注入以及电子从电子传输层(ETL)进入EML。随着掺杂剂浓度的增加,用电致发光(EL)光谱分析,复合区向阳极侧移动。此外,随着驱动电压的增加,还观察到EL红移,这意味着电子迁移率比电场迁移率对电场更敏感。为了进一步研究载流子的注入和运输特性,有意在EML的不同位置不使用FIrpic。当FIrpic在ETL附近未掺杂时,驱动电压显着增加,这证明了该OLED中的掺杂剂辅助电子注入特性。当未掺杂层靠近电子阻挡层时,驱动电压仅略微增加,但是由于主复合区未被掺杂,电流效率大大降低。但是,仍然观察到不可忽略的FIrpic发射,这意味着由于OXD的某些空穴传输特性,重组区穿透了EML。

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