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首页> 外文期刊>Organic Electronics >Improving the flexibility of large-area transparent conductive oxide electrodes on polymer substrates for flexible organic light emitting diodes by introducing surface roughness
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Improving the flexibility of large-area transparent conductive oxide electrodes on polymer substrates for flexible organic light emitting diodes by introducing surface roughness

机译:通过引入表面粗糙度,提高用于柔性有机发光二极管的聚合物基板上大面积透明导电氧化物电极的柔性

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In this study, transparent conductive oxide (TCO) electrodes with highly enhanced flexibility were developed on polymer substrates for application in flexible organic emitting diodes (OLEDs). TCOs, particularly indium tin oxide (ITO), have superior functional properties as electrodes compared to other materials but are inherently brittle, which significantly limits the bendability of the flexible devices. To improve the fracture strength of ITO on a polymer substrate under bending, we investigated the effect of expanding the film surface areas on the reduction of the stresses induced by an external bending force. Regularly spaced channels were imprinted at an elevated temperature onto polymer substrate surfaces using Teflon . Then, both amorphous (a-ITO) and crystalline ITOs (c-ITO) were dc magnetron sputter deposited. As the channel patterns on the substrate surfaces were reflected into the growing film surfaces, the ITO surfaces became unidirectionally wavy, which increased the surface area by approximately 500%. The electrical and optical properties of the wavy ITOs were measured using a four-point probe and a UV-visible spectro-photometer, respectively, and the flexibility was evaluated with cyclic bending tests. For comparison, flexible OLEDs were also fabricated on both wavy ITO and conventional ITO. Our results revealed that the functional properties of ITOs with expanded surfaces are equivalent to those of conventional ITOs on the polymer substrates. However, their cyclic bending stability was significantly improved. After 10,000 cycles at a bending radius of 10 mm, the electrical resistivity change was less than half of the conventional ITO. The current density-voltage (J-V) characteristics of the flexible OLEDs on the wavy ITOs were also nearly equal to those on conventional ITOs.
机译:在这项研究中,在聚合物基板上开发了具有高度增强的柔韧性的透明导电氧化物(TCO)电极,用于柔性有机发光二极管(OLED)。与其他材料相比,TCO(尤其是铟锡氧化物(ITO))具有优异的电极功能,但固有地易碎,这极大地限制了柔性设备的弯曲性。为了提高ITO在聚合物基底上弯曲时的断裂强度,我们研究了扩大膜表面积对减少外部弯曲力引起的应力的影响。使用特氟隆(Teflon)在高温下将规则间隔的通道压印在聚合物基材表面上。然后,无定形(a-ITO)和晶体ITO(c-ITO)均被直流磁控溅射沉积。随着基板表面上的通道图案反射到生长的薄膜表面上,ITO表面变得单向波浪状,这使表面积增加了大约500%。分别使用四点探针和紫外可见分光光度计测量波浪形ITO的电学和光学性能,并通过循环弯曲试验评估其柔韧性。为了进行比较,还在波浪形ITO和常规ITO上制造了柔性OLED。我们的结果表明,具有扩展表面的ITO的功能特性与聚合物基材上常规ITO的功能特性相同。但是,它们的循环弯曲稳定性显着提高。在10 mm弯曲半径下进行10,000次循环后,电阻率变化小于传统ITO的一半。波浪状ITO上的柔性OLED的电流密度-电压(J-V)特性也几乎与常规ITO上的相等。

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