Frohleiks Julia, Wepfer Svenja, Bacher Gerd, Nannen Ekaterina
Faculty of Electrical Engineering and Computer Science, Textile Innovatory , University of Applied Sciences Niederrhein , 47805 Krefeld , Germany.
ACS Appl Mater Interfaces. 2019 Jun 26;11(25):22612-22620. doi: 10.1021/acsami.9b07019. Epub 2019 Jun 18.
Red ionic iridium-based transition metal complex light-emitting electrochemical cells (iTMC-LECs) with emission centered at ca. 650 nm, maximum efficiency of 0.3%, maximum brightness above 650 cd m, and device lifetime well above 200 and 33 h at brightness levels of 10 and 210 cd m, respectively, are realized by the introduction of a p-type polymer interface to the standard design of [Ir(ppy)(pbpy)][PF] (Hppy = 2-phenylpyridine, pbpy = 6-phenyl-2,2'-bipyridine) iTMC-LEC. The unexpected color shift from yellow to red is studied in detail with respect to operation conditions and material combination. The experimental data suggest that either exciplex formation or subordinate, usually suppressed optical transitions of the iTMC might become activated by the introduced interface, causing the pronounced red shift of the peak emission wavelength.
通过在[Ir(ppy)(pbpy)][PF](Hppy = 2-苯基吡啶,pbpy = 6-苯基-2,2'-联吡啶)离子型过渡金属配合物发光电化学电池(iTMC-LEC)的标准设计中引入p型聚合物界面,实现了发射中心波长约为650 nm、最大效率为0.3%、最大亮度高于650 cd m²、在亮度分别为10和210 cd m²时器件寿命远高于200小时和33小时的红色离子铱基过渡金属配合物发光电化学电池(iTMC-LEC)。针对操作条件和材料组合,详细研究了从黄色到红色这一意外的颜色转变。实验数据表明,激基复合物的形成或iTMC通常被抑制的次要光学跃迁可能会因引入的界面而被激活,从而导致发射峰值波长出现明显的红移。