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Implementation of High-Quality Warm-White Light-Emitting Diodes by a Model-Experimental Feedback Approach Using Quantum Dot-Salt Mixed Crystals

机译:通过使用量子点盐混合晶体的模型实验反馈方法实现高质量的暖白色发光二极管

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摘要

In this work, a model-experimental feedback approach is developed and applied to fabricate high-quality, warm-white light-emitting diodes based on quantum dots (QDs) as color-conversion materials. Owing to their unique chemical and physical properties, QDs offer huge potential for lighting applications. Nevertheless, both emission stability and processability of the QDs are limited upon usage from solution. Incorporating them into a solid ionic matrix overcomes both of these drawbacks, while preserving the initial optical properties. Here borax (Na2B4O7·10H2O) is used as a host matrix because of its lower solubility and thereby reduced ionic strength in water in comparison with NaCl. This guarantees the stability of high-quality CdSe/ZnS QDs in the aqueous phase during crystallization and results in a 3.4 times higher loading amount of QDs within the borax crystals compared to NaCl. All steps from the synthesis via mixed crystal preparation to the warm-white LED preparation are verified by applying the model-experimental feedback, in which experimental data and numerical results provide feedback to each other recursively. These measures are taken to ensure a high luminous efficacy of optical radiation (LER) and a high color rendering index (CRI) of the final device as well as a correlated color temperature (CCT) comparable to an incandescent bulb. By doing so, a warm-white LED with a LER of 341 lm/Wopt, a CCT of 2720 K and a CRI of 91.1 is produced. Finally, we show that the emission stability of the QDs within the borax crystals on LEDs driven at high currents is significantly improved. These findings indicate that the proposed warm-white light-emitting diodes based on QDs-in-borax hold great promise for quality lighting. © 2015 American Chemical Society.
机译:在这项工作中,开发了一种模型实验反馈方法,并将其应用于制造基于量子点(QD)作为颜色转换材料的高质量,暖白色发光二极管。由于其独特的化学和物理特性,量子点为照明应用提供了巨大的潜力。然而,量子点的发射稳定性和可加工性都受溶液使用的限制。将它们掺入固体离子基质中克服了这两个缺点,同时保留了最初的光学性质。硼砂(Na2B4O7·10H2O)在这里用作基质,因为它的溶解度较低,因此与NaCl相比,在水中的离子强度降低。这保证了结晶过程中水相中高质量CdSe / ZnS QD的稳定性,并导致硼砂晶体中QD的负载量是NaCl的3.4倍。通过模型实验反馈验证了从混合晶体制备到暖白LED制备的所有步骤,其中实验数据和数值结果相互递归提供反馈。采取这些措施是为了确保最终设备具有很高的光辐射效率(LER)和较高的显色指数(CRI),以及与白炽灯泡相当的相关色温(CCT)。通过这样做,生产出具有341 lm / Wopt的LER,2720 K的CCT和91.1的CRI的暖白LED。最后,我们表明,以高电流驱动的LED上的硼砂晶体中QD的发射稳定性得到了显着改善。这些发现表明,所提出的基于硼砂中量子点的暖白色发光二极管对于高质量照明具有广阔的前景。 ©2015美国化学学会。

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