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基于卷绕 3D 元件的太赫兹超材料和系统:设计、技术方法和性能。

Terahertz metamaterials and systems based on rolled-up 3D elements: designs, technological approaches, and properties.

机构信息

Rzhanov Institute of Semiconductor Physics, Russian Academy of Science, Siberian Branch, Novosibirsk, 630090, Russia.

Budker Institute of Nuclear Physics, Russian Academy of Science, Siberian Branch, Novosibirsk, 630090, Russia.

出版信息

Sci Rep. 2017 Mar 3;7:43334. doi: 10.1038/srep43334.

Abstract

Electromagnetic metamaterials opened the way to extraordinary manipulation of radiation. Terahertz (THz) and optical metamaterials are usually fabricated by traditional planar-patterning approaches, while the majority of practical applications require metamaterials with 3D resonators. Making arrays of precise 3D micro- and nanoresonators is still a challenging problem. Here we present a versatile set of approaches to fabrication of metamaterials with 3D resonators rolled-up from strained films, demonstrate novel THz metamaterials/systems, and show giant polarization rotation by several chiral metamaterials/systems. The polarization spectra of chiral metamaterials on semiconductor substrates exhibit ultrasharp quasiperiodic peaks. Application of 3D printing allowed assembling more complex systems, including the bianisotropic system with optimal microhelices, which showed an extreme polarization azimuth rotation of 85° with drop by 150° at a frequency shift of 0.4%. We refer the quasiperiodic peaks in the polarization spectra of metamaterial systems to the interplay of different resonances, including peculiar chiral waveguide resonance. Formed metamaterials cannot be made by any other presently available technology. All steps of presented fabrication approaches are parallel, IC-compatible and allow mass fabrication with scaling of rolled-up resonators up to visible frequencies. We anticipate that the rolled-up meta-atoms will be ideal building blocks for future generations of commercial metamaterials, devices and systems on their basis.

摘要

电磁超材料为辐射的非凡操控开辟了道路。太赫兹(THz)和光学超材料通常通过传统的平面图案化方法制造,而大多数实际应用需要具有 3D 谐振器的超材料。制造精确的 3D 微纳谐振器阵列仍然是一个具有挑战性的问题。在这里,我们提出了一套通用的方法,用于从应变薄膜卷绕而成的 3D 谐振器的超材料制造,展示了新颖的 THz 超材料/系统,并通过几个手征超材料/系统展示了巨大的极化旋转。半导体衬底上手征超材料的极化光谱表现出超尖锐的拟周期峰。3D 打印的应用允许组装更复杂的系统,包括具有最佳微螺旋的双各向异性系统,该系统在频率偏移为 0.4%时表现出 85°的极端极化方位旋转,下降 150°。我们将超材料系统极化光谱中的拟周期峰归因于不同共振的相互作用,包括特殊的手征波导共振。通过任何其他当前可用的技术都无法制造形成的超材料。所提出的制造方法的所有步骤都是并行的、与 IC 兼容的,并允许大规模制造,卷绕的谐振器可扩展到可见光频率。我们预计,卷绕超原子将成为未来商业超材料、器件和系统的理想构建块。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/70da/5335716/fbb37133f99d/srep43334-f1.jpg

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