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Subwavelength-Grating Metamaterial Structures for Silicon Photonic Devices

机译:硅光子器件的亚波长光栅超材料结构

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摘要

Segmenting silicon waveguides at the subwavelength scale produce an equivalent homogenous material. The geometry of the waveguide segments provides precise control over modal confinement, effective index, dispersion and birefringence, thereby opening up new approaches to design devices with unprecedented performance. Indeed, with ever-improving lithographic technologies offering sub-100-nm patterning resolution in the silicon photonics platform, many practical devices based on subwavelength structures have been demonstrated in recent years. Subwavelength engineering has thus become an integral design tool in silicon photonics, and both fundamental understanding and novel applications are advancing rapidly. Here, we provide a comprehensive review of the state of the art in this field. We first cover the basics of subwavelength structures, and discuss substrate leakage, fabrication jitter, reduced backscatter, and engineering of material anisotropy. We then review recent applications including broadband waveguide couplers, high-sensitivity evanescent field sensors, low-loss devices for mid-infrared photonics, polarization management structures, spectral filters, and highly efficient fiber-to-chip couplers. We finally discuss the future prospects for subwavelength silicon structures and their impact on advanced device design.
机译:在亚波长范围内分割硅波导会产生等效的均质材料。波导段的几何形状提供了对模态限制,有效折射率,色散和双折射的精确控制,从而为设计具有前所未有性能的设备开辟了新途径。的确,随着硅光子平台中不断改进的光刻技术可提供低于100 nm的图案分辨率,近年来已证明了许多基于亚波长结构的实用器件。因此,亚波长工程已成为硅光子学中不可或缺的设计工具,基础知识和新颖应用都在迅速发展。在这里,我们对这一领域的最新状况进行了全面的回顾。我们首先介绍了亚波长结构的基础知识,并讨论了基板泄漏,制造抖动,减少的后向散射以及材料各向异性的工程设计。然后,我们回顾了最近的应用,包括宽带波导耦合器,高灵敏度瞬逝场传感器,用于中红外光子学的低损耗设备,偏振管理结构,光谱滤波器以及高效的光纤到芯片耦合器。我们最后讨论了亚波长硅结构的未来前景及其对先进器件设计的影响。

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