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High-finesse Fabry–Perot cavities with bidimensional Si3N4 photonic-crystal slabs

机译:具有二维Si3N4光子晶体平板的高级Fabry–Perot腔

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摘要

Light scattering by a two-dimensional photonic-crystal slab (PCS) can result in marked interference effects associated with Fano resonances. Such devices offer appealing alternatives to distributed Bragg reflectors and filters for various applications, such as optical wavelength and polarization filters, reflectors, semiconductor lasers, photodetectors, bio-sensors and non-linear optical components. Suspended PCS also have natural applications in the field of optomechanics, where the mechanical modes of a suspended slab interact via radiation pressure with the optical field of a high-finesse cavity. The reflectivity and transmission properties of a defect-free suspended PCS around normal incidence can be used to couple out-of-plane mechanical modes to an optical field by integrating it in a free-space cavity. Here we demonstrate the successful implementation of a PCS reflector on a high-tensile stress Si3N4 nanomembrane. We illustrate the physical process underlying the high reflectivity by measuring the photonic-crystal band diagram. Moreover, we introduce a clear theoretical description of the membrane scattering properties in the presence of optical losses. By embedding the PCS inside a high-finesse cavity, we fully characterize its optical properties. The spectrally, angular- and polarization-resolved measurements demonstrate the wide tunability of the membrane’s reflectivity, from nearly 0 to 99.9470±0.0025%, and show that material absorption is not the main source of optical loss. Moreover, the cavity storage time demonstrated in this work exceeds the mechanical period of low-order mechanical drum modes. This so-called resolved-sideband condition is a prerequisite to achieve quantum control of the mechanical resonator with light.
机译:二维光子晶体平板(PCS)的光散射可能导致与Fano共振相关的明显干涉效应。这种设备为分布式布拉格反射器和滤光片提供了吸引人的替代方案,可用于各种应用,例如光学波长和偏振滤光片,反射器,半导体激光器,光电探测器,生物传感器和非线性光学组件。悬浮PCS在光力学领域也有自然应用,在该领域中,悬浮平板的机械模式通过辐射压力与高级腔的光场相互作用。通过将其集成到自由空间空腔中,可将法向入射附近的无缺陷的悬浮PCS的反射率和透射特性用于将平面外机械模式耦合到光场。在这里,我们演示了PCS反射器在高应力应力Si3N4纳米膜上的成功实现。我们通过测量光子晶体能带图来说明高反射率背后的物理过程。此外,我们介绍了在存在光损耗的情况下膜散射特性的清晰理论描述。通过将PCS嵌入高精细腔体内,我们可以充分表征其光学特性。光谱,角度和偏振分辨的测量结果表明,膜的反射率具有很宽的可调性,从近0到99.9470±0.0025%,并且表明材料吸收不是光学损耗的主要来源。而且,在这项工作中证明的腔存储时间超过了低阶机械鼓模式的机械时间。这种所谓的分辨边带条件是用光实现机械谐振器的量子控制的前提。

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