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Waveguiding of Photoluminescence in a Layer of Semiconductor Nanoparticles

机译:半导体纳米粒子层中的光致发光波导

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摘要

Semiconductor nanoparticles (SNPs), such as quantum dots (QDs) and core/shell nanoparticles, have proven to be promising candidates for the development of next-generation technologies, including light-emitting diodes (LEDs), liquid crystal displays (LCDs) and solar concentrators. Typically, these applications use a sub-micrometer-thick film of SNPs to realize photoluminescence. However, our current knowledge on how this thin SNP layer affects the optical efficiency remains incomplete. In this work, we demonstrate how the thickness of the photoluminescent layer governs the direction of the emitted light. Our theoretical and experimental results show that the emission is fully outcoupled for sufficiently thin films (monolayer of SNPs), whereas for larger thicknesses (larger than one tenth of the wavelength) an important contribution propagates along the film that acts as a planar waveguide. These findings serve as a guideline for the smart design of diverse QD-based systems, ranging from LEDs, where thinner layers of SNPs maximize the light outcoupling, to luminescent solar concentrators, where a thicker layer of SNPs will boost the efficiency of light concentration.
机译:SEMACTION纳米颗粒(SNP),例如量子点(QDS)和核心/壳纳米粒子,已被证明是对下一代技术的开发的承诺候选者,包括发光二极管(LED),液晶显示器(LCD)和液晶显示器(LCD)和太阳能聚光器。通常,这些应用使用SNP的亚微米厚膜来实现光致发光。但是,我们目前关于这种薄SNP层如何影响光学效率的知识仍然不完整。在这项工作中,我们证明了光致发光层的厚度如何控制发射光的方向。我们的理论和实验结果表明,发射充分呈薄膜(SNP的单层),而对于较大的厚度(大于波长的十分之一),重要的贡献沿着作为平面波导的薄膜传播。这些发现作为智能设计的智能设计的指导,从LED范围内,SNP的较薄层最大化光线耦合,发光太阳能集中器,其中较厚的SNP层将提高光浓度的效率。

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