Li Zhancheng, Liu Wenwei, Cheng Hua, Chen Shuqi, Tian Jianguo
Opt Lett. 2016 Jul 1;41(13):3142-5. doi: 10.1364/OL.41.003142.
The asymmetric transmission effect has attracted great interest due to its wide modern optical applications. In this Letter, we present the underlying theory, the design specifications, and the simulated demonstration of tunable dual-band asymmetric transmission for circularly polarized waves with a graphene planar chiral metasurface. The spectral position of the asymmetric peak is linearly dependent on the Fermi energy and can be controlled by changing the Fermi energy. The success of tunable dual-band asymmetric transmission can be attributed to the enantiomerically sensitive plasmonic excitations of the graphene metasurface. This work offers a further step in developing tunable asymmetric transmission of circularly polarized waves for applications in detectors and other polarization-sensitive electromagnetic devices.
非对称传输效应因其在现代光学中的广泛应用而备受关注。在本信函中,我们介绍了基于石墨烯平面手性超表面实现圆偏振波可调谐双波段非对称传输的基础理论、设计规格以及模拟演示。非对称峰值的光谱位置与费米能量呈线性相关,可通过改变费米能量进行控制。可调谐双波段非对称传输的成功可归因于石墨烯超表面的对映体敏感等离子体激发。这项工作为开发用于探测器和其他偏振敏感电磁设备的圆偏振波可调谐非对称传输迈出了进一步的步伐。