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Low-Threshold Lasing in 3D Dye-Doped Photonic Crystals Derived from Colloidal Self-Assemblies

机译:胶体自组装3D染料掺杂光子晶体中的低阈值激光

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摘要

In this article, we demonstrated low-threshold lasing in three-dimensional (3D) polymeric photonic crystals derived from colloidal suspensions. To achieve this, we used monodisperse silica beads in a photocurable refractive index matched medium with high viscosity and polarity. In this system, the colloidal silica beads rapidly self-organized into nonclose-packed fcc crystals because of strong repulsive interparticle potential relative to diminishing van der Waals attraction, and subsequently the colloid crystals were solidified by UV irradiation. Dye molecules as optical gain medium were incorporated in the polymeric matrix by simply mixing the dye molepules and the photocurable suspension before casting the photonic crystal films. The translucent composite photonic films showed emission inhibition and enhancement due to the low photon density of states (DOS) at the stop band and high DOS at the band edge, respectively. On the other hand, the porous photonic films, which were prepared by removal of silica particles from the composite films, exhibited larger bandwidth and higher reflectivity (> 80) due to the enhanced refractive index contrast. Under irradiation of excitation light source, the porous photonic film showed strongly enhanced stimulated emission at the band edge by a factor of more than 300 with respect to the spontaneous emission of dye molecules embedded in a bulk film without nanostructure. In addition, the lasing wavelength could be controlled by simply changing the particle volume fraction in the composite films from which the porous films were prepared. Moreover, the threshold excitation intensity was reduced by a factor of one-tenth relative to the previously reported values. The simple method for preparing 3D photonic crystals described here and subsequent lasing characteristics have great potential in a broad range of applications including displays, μ-TAS, and optofluidic light sources.
机译:在本文中,我们演示了来自胶体悬浮液的三维(3D)聚合物光子晶体中的低阈值激光。为了实现这一点,我们在具有高粘度和极性的光固化折射率匹配介质中使用了单分散石英珠。在该系统中,胶体二氧化硅珠迅速自组织成非紧密堆积的fcc晶体,因为相对于范德华吸引力的减弱,胶体间粒子电位很强,随后胶体晶体通过紫外线照射固化。在铸造光子晶体薄膜之前,只需将染料分子和光固化悬浮液混合,即可将染料分子作为光学增益介质掺入聚合物基质中。由于阻带处的低光子密度(DOS)和带边缘处的高DOS,半透明复合光子薄膜表现出发射抑制和增强。另一方面,通过去除复合膜中的二氧化硅颗粒制备的多孔光子薄膜由于折射率对比度增强,表现出更大的带宽和更高的反射率(>80%)。在激发光源的照射下,多孔光子薄膜在带边缘的受激发射比嵌入无纳米结构的块状薄膜中的染料分子的自发发射增强了300倍以上。此外,激光波长可以通过简单地改变制备多孔薄膜的复合薄膜中的颗粒体积分数来控制。此外,阈值激励强度相对于先前报告的值降低了十分之一。这里描述的制备3D光子晶体的简单方法以及随后的激光特性在广泛的应用中具有巨大的潜力,包括显示器、μ-TAS和光流体光源。

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