低损耗扭曲可调面内各向异性偏振晶体

Nathaniel Capote-Robayna, Ana I. F. Tresguerres-Mata, Aitana Tarazaga Martín-Luengo, Enrique Terán-García, Luis Martin-Moreno, Pablo Alonso-González, Alexey Y. Nikitin
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摘要

范德华(vdW)材料支持声子极化子(PhPs)--光与晶格振动耦合--由于其内在的各向异性和低损耗,引起了人们的极大兴趣。特别是,$α$-MoO$_3$支持具有面内各向异性传播的声子极化子,人们利用它来调整扭曲双层和三层材料的光学响应。此外,各种研究还探讨了如何实现偏振晶体(PC)--周期与偏振子波长相当的晶格。由蚀刻在 $\alpha$-MoO$_3$ 板中的孔阵列组成的 PC 显示出布拉格共振,这种共振取决于晶体学轴线与晶格矢量之间的夹角。然而,这种 PC 概念的几何参数具有固定的方向和尺寸,限制了实际应用,并且由于侵入式制造工艺而带来了额外的散射损耗。在这里,我们展示了一种新型 PC 概念,它克服了这些限制,实现了光损耗光学调谐。它包括一个可旋转的原始 $α$-MoO$_3$ 层,该层位于金属层中制造的周期性孔阵列上。我们的设计防止了制造过程中造成的 $α$-MoO$_3$ 光学特性的退化,保留了其固有的低损耗和 PhPs 的面内各向异性传播。由此产生的 PC 表现出布洛赫模式的旋转,这可以通过扫描近场显微镜进行实验观察。此外,我们还通过实验确定了极化子的动量,并重建了它们的带状结构。这些结果为基于极化子的机械可调光元件的潜在激光、传感或能量收集应用铺平了道路。
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Low-loss twist-tunable in-plane anisotropic polaritonic crystals
Van der Waals (vdW) materials supporting phonon polaritons (PhPs) - light coupled to lattice vibrations - have gathered significant interest because of their intrinsic anisotropy and low losses. In particular, $\alpha$-MoO$_3$ supports PhPs with in-plane anisotropic propagation, which has been exploited to tune the optical response of twisted bilayers and trilayers. Additionally, various studies have explored the realization of polaritonic crystals (PCs) - lattices with periods comparable to the polariton wavelength -. PCs consisting of hole arrays etched in $\alpha$-MoO$_3$ slabs exhibit Bragg resonances dependent on the angle between the crystallographic axes and the lattice vectors. However, such PC concept, with a fixed orientation and size of its geometrical parameters, constrains practical applications and introduces additional scattering losses due to invasive fabrication processes. Here we demonstrate a novel PC concept that overcomes these limitations, enabling low-loss optical tuning. It comprises a rotatable pristine $\alpha$-MoO$_3$ layer located on a periodic hole array fabricated in a metallic layer. Our design prevents degradation of the $\alpha$-MoO$_3$ optical properties caused by fabrication, preserving its intrinsic low-loss and in-plane anisotropic propagation of PhPs. The resulting PC exhibits rotation of the Bloch modes, which is experimentally visualized by scanning near-field microscopy. In addition, we experimentally determine the polaritons momentum and reconstruct their band structure. These results pave the way for mechanically tunable nanooptical components based on polaritons for potential lasing, sensing, or energy harvesting applications.
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