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Compact preconditioned photonic crystal demultiplexers based on combined focusing and superprism effects

机译:基于聚焦和超棱镜效应的紧凑型预处理光子晶体解复用器

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Wavelength demultiplexing is one of the major applications of unique dispersion properties of photonic crystals (PCs). Possibility of integration and compactness are two main advantages of PC based demultiplexers compared to other demultiplexing techniques for applications including compact spectrometers (for sensory applications) and WDM demultiplexers. Here, we show that resolution and size limitations of conventional superprism-based photonic crystal demultiplexers are caused by the choice of configuration. We suggest an alternative implementation (combining superprism effect and focusing) that improves the performance compared to the conventional implementation in terms of being more compact and relaxing the requirement for divergence angle of the incident beam. We use effective index model to describe the beam behavior inside the photonic crystal region. Using this model, effective indices (second order and third order) are calculated directly from the band structure and are used to find the optimal operation parameters for the demultiplexing device. Detailed calculations show that the required size of preconditioned superprism photonic crystal demultiplexers scales up as N~(5/2) (N being the number of channels which is proportional to the resolution of the device) which shows significant advantage over N~4 dependence in conventional superprism-based devices, especially for high resolutions required in practical DWDM systems or spectroscopic applications. Structures obtained through optimization have been fabricated in SOI wafers using e-beam writing and ICP etching, and spatial separation of channels (with good isolation) in focusing superprism devices is experimentally demonstrated.
机译:波长解复用是光子晶体(PC)独特色散特性的主要应用之一。与其他用于包括紧凑型光谱仪(用于感测应用)和WDM多路分解器的应用的多路分解技术相比,集成和紧凑的可能性是基于PC的多路分解器的两个主要优点。在这里,我们表明,传统的基于超棱镜的光子晶体解复用器的分辨率和尺寸限制是由配置选择引起的。我们提出了一种替代实现方式(结合了超棱镜效果和聚焦),与传统实现方式相比,该实现方式更加紧凑,并且放宽了入射光束发散角的要求。我们使用有效的指数模型来描述光子晶体区域内的光束行为。使用该模型,直接从频带结构中计算出有效指标(二阶和三阶),并用于找到多路分解设备的最佳工作参数。详细的计算表明,预处理的超棱镜光子晶体解复用器的所需大小按N〜(5/2)倍增(N是与设备分辨率成正比的通道数),相对于N〜4依赖性显示出显着优势。传统的基于超棱镜的设备,特别是对于实际DWDM系统或光谱应用中所需的高分辨率。通过优化使用电子束写入和ICP蚀刻在SOI晶圆中制造出结构,并通过实验证明了聚焦超棱镜器件中通道的空间分离(具有良好的隔离性)。

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