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Three-dimensional control of light in a two-dimensional photonic crystal slab

机译:二维光子晶体平板中的光的三维控制

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Optoelectronic devices are increasingly important in communication and information technology. To achieve the necessary manipulation of light (which carries information in optoelectronic devices), considerable efforts are directed at the development of photonic crystals—periodic dielectric materials that have so-called photonic bandgaps, which prohibit the propagation of photons having energies within the bandgap region. Straightforward application of the bandgap concept is generally thought to require three-dimensional (3D) photonic crystals; their two-dimensional (2D) counterparts confine light in the crystal plane, but not in the perpendicular z direction, which inevitably leads to diffraction losses. Nonetheless, 2D photonic crystals still attract interest because they are potentially more amenable to fabrication by existing techniques and diffraction losses need not seriously impair utility. Here we report the fabrication of a waveguide-coupled photonic crystal slab (essentially a freestanding 2D photonic crystal) with a strong 2D bandgap at wavelengths of about 1.5 μm, yet which is capable of fully controlling light in all three dimensions. These features confirm theoretical calculations on the possibility of achieving 3D light control using 2D bandgaps, with index guiding providing control in the third dimension, and raise the prospect of being able to realize unusual photonic-crystal devices, such as thresholdless lasers.
机译:光电设备在通信和信息技术中越来越重要。为了实现对光(在光电设备中承载信息)进行必要的操纵,人们大力致力于光子晶体的开发,光子晶体是具有所谓的光子带隙的周期性介电材料,其禁止在带隙区域内传播具有能量的光子。通常认为带隙概念的直接应用需要3D(3D)光子晶体。它们的二维(2D)对应物将光限制在晶体平面内,但不限制在垂直的z方向上,这不可避免地导致衍射损耗。尽管如此,二维光子晶体仍然吸引着人们的兴趣,因为它们可能更适合通过现有技术进行制造,并且衍射损耗不必严重损害实用性。在这里,我们报告了在波长约1.5μm处具有强2D带隙的波导耦合光子晶体平板(基本上是独立的2D光子晶体)的制造,但它能够完全控制所有三个维度的光。这些特征证实了关于使用2D带隙实现3D光控制的可能性的理论计算,其中折射率引导在三维中提供了控制,并提高了能够实现不寻常的光子晶体器件(如无阈值激光器)的前景。

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