Bai Jing, Yao Yu
School of Electrical, Computer and Energy Engineering, Arizona State University, Tempe, Arizona 85287, United States.
Center for Photonic Innovation, Arizona State University, Tempe, Arizona 85287, United States.
ACS Nano. 2021 Sep 28;15(9):14263-14274. doi: 10.1021/acsnano.1c02278. Epub 2021 Aug 12.
Plasmonic chiral metamaterials have attracted broad research interest because of their potential applications in optical communication, biomedical diagnosis, polarization imaging, and circular dichroism spectroscopy. However, optical losses in plasmonic structures severely limit practical applications. Here, we present the design concept and experimental demonstration for highly efficient subwavelength-thick plasmonic chiral metamaterials with strong chirality. The proposed designs utilize plasmonic metasurfaces to control the phase and polarization of light and exploit anisotropic thin-film interference effects to enhance optical chirality while minimizing optical loss. Based on such design concepts, we demonstrated experimentally optical devices such as circular polarization filters with transmission efficiency up to 90% and extinction ratio >180, polarization converters with conversion efficiency up to 90%, as well as on-chip integrated microfilter arrays for full Stokes polarization detection with high accuracy over a broad wavelength range (3.5-5 μm). The proposed design concepts are applicable from near-infrared to Terahertz regions structural engineering.
等离子体手性超材料因其在光通信、生物医学诊断、偏振成像和圆二色光谱等领域的潜在应用而引起了广泛的研究兴趣。然而,等离子体结构中的光学损耗严重限制了其实际应用。在此,我们展示了具有强手性的高效亚波长厚度等离子体手性超材料的设计概念和实验演示。所提出的设计利用等离子体超表面来控制光的相位和偏振,并利用各向异性薄膜干涉效应来增强光学手性,同时将光学损耗降至最低。基于这样的设计概念,我们通过实验展示了诸如透射效率高达90%且消光比>180的圆偏振滤波器、转换效率高达90%的偏振转换器,以及用于在宽波长范围(3.5 - 5μm)内进行高精度全斯托克斯偏振检测的片上集成微滤波器阵列等光学器件。所提出的设计概念适用于从近红外到太赫兹区域的结构工程。