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Grading interfaces-A new concept to improve device performance in organic multilayer light-emitting diodes

机译:分级界面 - 一种新的概念,可以提高有机多层发光二极管中的装置性能

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The influence of interfacial charges on the device characteristics of multilayer organic light-emitting diodes (OLEDs) is investigated, and a concept to improve device performance is presented. We studied devices consisting of copper phthalocyanine (CuPc) as hole injection and buffer layer, N,N'-di(naphthalene-l-yl)-N,N'-diphenyl-benzidine (NPB) as hole transport layer, and tris(8-hydroxyquinolinato) aluminum (Alq_3) as electron trasport and emitting layer sandwiched between a high-work-function metal and a semi-transparent calcium electrode. Detailed current-voltage measurements strongly on the bias sweep direction, indicating that interfacial charges have a pronounced influence on the device characteristics. Low-frequency capacitance-voltage experiments reveal a voltage-independent capacitance in negative bias direction and a significant increase between 0 and 2 V, evidence of a redistribution fo the internal capacitance in negative bias direction and a significant increase between 0 and 2 V, evidence of a redistrubiton of the internal electric field in this device configuration. Time-resolved electroluminescence (EL) measurements proved that also the EL response time at low voltages is governed by the accumulation of charge carriers inside the device rather than by their transport.Optimizing the device structure by gradifng the organic-organic interfaces results in an enhanced current flow, an improved brightness, and a faster EL response time. Our investigations clearly indicate that the abrupt CuPc-NPB as well as the NPB-Alq_3 interface significnatly influence the performance of our multilayer OLED.
机译:研究了界面电荷对多层有机发光二极管(OLED)器件特性的影响,并提出了一种改善装置性能的概念。我们研究了由铜酞菁(CUPC)组成的装置,作为空穴注入和缓冲层,N,N'-DI(萘-1-基)-N,N'-二苯基 - 苯并苯胺(NPB)作为空穴传输层,以及TRIS( 8-羟基喹啉)铝(Alq_3)作为电子服务区域和夹在高功函数金属和半透明电极钙之间发光层。在偏置扫描方向上强烈强烈的电流电压测量,表明界面电荷对器件特性具有明显的影响。低频电容 - 电压的实验揭示了在负偏置方向的电压无关的电容量和0和2 V,再分配FO在负偏压方向上的内部电容与0和2 V的显著增加,证据的证据之间的显著增加该器件配置中内电场的重新磨削。时间分辨的电致发光(EL)测量证明,低电压下的EL响应时间由设备内的电荷载流子的累积而不是通过其运输来控制。通过GradifnG优化器件结构,有机 - 有机接口导致增强型电流流动,改进的亮度和更快的EL响应时间。我们的调查清楚地表明,突然的CUPC-NPB以及NPB-ALQ_3接口显着影响了我们多层OLED的性能。

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