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Multiscale Micro-Nano Nested Structures: Engineered Surface Morphology for Efficient Light Escaping in Organic Light-Emitting Diodes

机译:多尺度微纳米嵌套结构:经过工程改造的表面形态,可有效地逃逸有机发光二极管中的光

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摘要

Various micro-to-nanometer scale structures are extremely attractive for light escaping in organic light-emitting diodes. To develop and optimize such structures, an innovative approach was demonstrated for the first time to fabricate multiscale micro nano nested structures by photolithography with a well-designed mask pattern followed by a controllable thermal reflow process. The experimental and theoretical characterizations verify that these unique nested structures hold the capability of light concentration, noticeable low haze, and efficient antireflection. As a proof-of-concept, the incorporation of this pattern onto the glass substrate efficiently facilitates light escaping from the device, resulting in current efficiency 1.60 times and external quantum efficiency 1.63 times that of a control flat device, respectively. Moreover, compared to a hexagonally arranged microlens array and quasi-random biomimetic moth eye nanostructures, the nested structures proposed here can magically tune the spatial emission profile to comply with the Lambertian radiation pattern. Hence, this novel structure is expected to be of great potential in related ubiquitous optoelectronic applications and provide scientific inspiration to other novel multiscale micro nanostructure research.
机译:各种微米至纳米尺度的结构对于有机发光二极管中的光逸出极为有吸引力。为了开发和优化这种结构,首次展示了一种创新方法,该方法是通过光刻,精心设计的掩模图案以及可控的热回流工艺来制造多尺度的微纳米嵌套结构。实验和理论特性证明,这些独特的嵌套结构具有聚光能力,明显的低雾度和有效的抗反射能力。作为概念验证,将该图案结合到玻璃基板上可有效地促进从器件逸出的光,从而导致电流效率分别是对照平面器件的1.60倍和外部量子效率1.63倍。而且,与六边形排列的微透镜阵列和准随机仿生蛾眼纳米结构相比,这里提出的嵌套结构可以神奇地调整空间发射轮廓以符合朗伯辐射模式。因此,这种新颖的结构有望在相关的无处不在的光电应用中具有巨大的潜力,并为其他新颖的多尺度微纳米结构研究提供科学灵感。

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