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Photonic bandgap engineering for spectral narrowing of emission in self-assembled colloidal photonic crystals

机译:用于自组装胶体光子晶体中发射光谱窄化的光子带隙工程

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The engineering of a well-designed passband inside the stopband of a self-assembled colloidal crystal superlattice and its effect on the steady-state emission properties of infiltrated fluorophores is reported here. The superlattice was constructed by convective self-assembly of slabs of silica spheres of two distinct diameters. This resulted in an effective passband in between the two stopbands of the total photonic crystal structure as seen in transmission. Because of the passband there is a narrow spectral range with an increased density of states for photon modes. This is seen as a decrease in the suppression of emission (an enhancement of the emission) for the narrow spectral range where the effective passband manifests itself. These experiments indicate that the threshold for lasing can possibly be lowered by spectrally narrowing the emission of fluorophores infiltrated in suitably engineered self-assembled photonic crystal superlattices, and are therefore important towards the realization of efficient all-optical integrated circuits from functionalized photonic superlattices and heterostructures.
机译:本文报道了自组装胶体晶体超晶格的阻带内设计良好的通带的工程及其对渗透荧光团稳态发射特性的影响。超晶格是通过对流自组装两个直径不同的二氧化硅球的平板而构造的。如在传输中所见,这导致了整个光子晶体结构的两个阻带之间的有效通带。由于通带,存在一个狭窄的光谱范围,并且光子模式的状态密度增加了。对于有效通带表现出来的窄光谱范围,这被视为减少了发射抑制(发射增强)。这些实验表明,通过光谱地缩小在适当设计的自组装光子晶体超晶格中渗透的荧光团的发射,可以降低发射的阈值,因此对于从功能化的光子超晶格和异质结构实现有效的全光集成电路非常重要。 。

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