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Silicon nanocrystal-based photonic crystal slabs with broadband and efficient directional light emission

机译:具有宽带和有效定向发光的硅纳米晶体基光子晶体平板

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摘要

Light extraction from a thin planar layer can be increased by introducing a two-dimensional periodic pattern on its surface. This structure, the so-called photonic crystal (PhC) slab, then not only enhances the extraction efficiency of light but can direct the extracted emission into desired angles. Careful design of the structures is important in order to have a spectral overlap of the emission with extraction (leaky) modes. We show that by fabricating PhC slabs with optimized dimensions from silicon nanocrystals (SiNCs) active layers, the extraction efficiency of vertical light emission from SiNCs at a particular wavelength can be enhanced ∼ 11 times compared to that of uncorrugated SiNCs-rich layer. More importantly, increased light emission can be obtained in a broad spectral range and, simultaneously, the extracted light can stay confined within relatively narrow angle around the normal to the sample plane. We demonstrate experimentally and theoretically that the physical origin of the enhancement is such that light originating from SiNCs first couples to leaky modes of the PhCs and is then efficiently extracted into the surrounding.
机译:通过在其表面上引入二维周期性图案,可以增加从薄的平面层提取光的能力。这种结构,即所谓的光子晶体(PhC)平板,不仅可以提高光的提取效率,而且可以将提取的发射定向到所需的角度。为了使发射与提取(泄漏)模式具有光谱重叠,结构的精心设计非常重要。我们表明,通过从硅纳米晶体(SiNCs)活性层制造具有最佳尺寸的PhC平板,与不富含SiNCs的富层相比,在特定波长下从SiNCs垂直发射的光的提取效率可以提高〜11倍。更重要的是,可以在较宽的光谱范围内获得增加的发光,同时,提取的光可以保持在围绕样品平面法线的较窄角度范围内。我们从实验和理论上证明,增强的物理起源是这样的:源自SiNC的光首先耦合到PhC的泄漏模式,然后被有效地提取到周围。

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