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首页> 外文期刊>RSC Advances >Novel microlens arrays with embedded Al2O3 nanoparticles for enhancing efficiency and stability of flexible polymer light-emitting diodes
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Novel microlens arrays with embedded Al2O3 nanoparticles for enhancing efficiency and stability of flexible polymer light-emitting diodes

机译:具有嵌入式Al2O3纳米颗粒的新型微透镜阵列,用于提高柔性聚合物发光二极管的效率和稳定性

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摘要

The use of polymer light-emitting diodes (PLEDs) as future displays and lightings has been of interest because of their advantages such as lightness, thinness, high contrast ratio, fast response time and high flexibility. Light-extraction structures such as microlens arrays have been designed to improve the efficiency of PLEDs. In this work, we have fabricated novel microlens arrays based on an organic–inorganic hybrid sol on a flexible substrate. Al _(2) O _(3) nanoparticles dispersed in microlens arrays are expected not only to extract more light but also to block gas molecules. Further light-extraction from Al _(2) O _(3) nanoparticles in the microlens arrays was confirmed by an increase in diffusive reflectance and photoluminescence intensity. As a result, the flexible PLEDs with the arrays showed enhanced maximum current efficiencies by 47% and 38% for SPB-02T (blue) and PDY-132 (yellow) emissive materials. They also showed improved stability, and high flexibility at a bending radius of 4 mm. Furthermore, Al _(2) O _(3) nanoparticles were incorporated into irregular microlens arrays consisting of two different sizes of hemispherical lenses, to minimize changes in emission spectra and radiation pattern as well as to improve efficiency.
机译:由于它们的优点如亮度,薄,高对比度,快速响应时间和高灵活性,因此使用聚合物发光二极管(Pleds)作为未来的显示器和灯具。诸如微透镜阵列的光提取结构旨在提高镀层的效率。在这项工作中,我们基于柔性基材上的有机无机杂交溶胶制造了新型微透镜阵列。预期分散在微透镜阵列中的纳米颗粒不仅要提取更多的光,而且还预期嵌入气体分子。通过漫射反射率和光致发光强度的增加,确认微透镜阵列中的Al _(2)O _(3)纳米颗粒的进一步光萃取。结果,对于SPB-02T(蓝色)和PDY-132(黄色)发光材料,施用阵列的柔性镀层显示出增强的最大电流效率为47%和38%。它们还显示出改善的稳定性,弯曲半径为4毫米。此外,Al _(2)O _(3)纳米颗粒掺入不规则的微透镜阵列中,其由两种不同尺寸的半球形镜片组成,以最小化发射光谱和辐射图案的变化以及提高效率。

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