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Health-friendly high-quality white light using violet-green-red laser and InGaN nanowires-based true yellow nanowires light-emitting diodes

机译:使用紫绿色红色激光和基于InGaN纳米线的真正黄色纳米线发光二极管的健康友好型高质量白光

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摘要

White light based on blue laser - YAG: Ce phosphor has the advantage of implementing solid-state lighting and optical wireless communications combined-functionalities in a single lamp. However, the blue light was found to disrupt melatonin production, and therefore the human circadian rhythm in general; while the yellow phosphor is susceptible to degradation by laser irradiation and also lack tunability in color rendering index (CRI). In this investigation, by using a violet laser, which has 50% less impact on circadian response, as compared to blue light, and an InGaN-quantum-disks nanowires-based light-emitting diode (NWs-LED), we address both issues simultaneously. The white light is therefore generated using violet-green-red lasers, in conjunction with a yellow NWs-LED realized using molecular beam epitaxy technique, on titanium-coated silicon substrates. Unlike the conventional quantum-well-based LED, the NWs-LED showed efficiency-droop free behavior up to 9.8 A/cm with peak output power of 400 μW. A low turn-on voltage of ∼2.1 V was attributed to the formation of conducting titanium nitride layer at NWs nucleation site and improved fabrication process in the presence of relatively uniform height distribution. The 3D quantum confinement and the reduced band bending improve carriers-wavefunctions overlap, resulting in an IQE of ∼39 %. By changing the relative intensities of the individual color components, CRI of >85 was achieved with tunable correlated color temperature (CCT), thus covering the desired room lighting conditions. Our architecture provides important considerations in designing smart solid-state lighting while addressing the harmful effect of blue light.
机译:基于蓝色激光的白光-YAG:铈磷光体具有在单个灯中实现固态照明和光学无线通信组合功能的优势。但是,发现蓝光会破坏褪黑激素的产生,从而影响人类的昼夜节律。黄色荧光粉容易被激光照射降解,并且显色指数(CRI)缺乏可调性。在这项研究中,通过使用与蓝光相比,对生物钟响应的影响减少50%的紫激光和基于InGaN量子盘纳米线的发光二极管(NWs-LED),我们解决了这两个问题同时。因此,白光是用紫绿色-红色-红色激光器结合使用分子束外延技术实现的黄色NWs-LED在涂钛的硅基板上产生的。与传统的基于量子阱的LED不同,NWs-LED在高达9.8 A / cm的情况下表现出无效率下降现象,峰值输出功率为400μW。 〜2.1 V的低导通电压归因于在NWs成核位置形成的导电氮化钛层,并且在存在相对均匀的高度分布的情况下改进了制造工艺。 3D量子限制和减小的能带弯曲可改善载流子波函数的重叠,从而使IQE达到约39%。通过更改各个颜色分量的相对强度,可调整的相关色温(CCT)达到了> 85的CRI,从而覆盖了所需的室内照明条件。我们的体系结构在设计智能固态照明时要解决重要问题,同时要解决蓝光的有害影响。

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