Nat Mater. 2013 Feb;12(2):108-13. doi: 10.1038/nmat3495. Epub 2012 Nov 25.
Invisibility by metamaterials is of great interest, where optical properties are manipulated in the real permittivity-permeability plane. However, the most effective approach to achieving invisibility in various military applications is to absorb the electromagnetic waves emitted from radar to minimize the corresponding reflection and scattering, such that no signal gets bounced back. Here, we show the experimental realization of chip-scale unidirectional reflectionless optical metamaterials near the spontaneous parity-time symmetry phase transition point where reflection from one side is significantly suppressed. This is enabled by engineering the corresponding optical properties of the designed parity-time metamaterial in the complex dielectric permittivity plane. Numerical simulations and experimental verification consistently exhibit asymmetric reflection with high contrast ratios around a wavelength of of 1,550 nm. The demonstrated unidirectional phenomenon at the corresponding parity-time exceptional point on-a-chip confirms the feasibility of creating complicated on-chip parity-time metamaterials and optical devices based on their properties.
超材料的隐形性引起了广泛关注,人们可以在介电常数-磁导率实部平面上操控光学性质。然而,在各种军事应用中实现隐形的最有效方法是吸收雷达发出的电磁波,以最小化相应的反射和散射,从而避免信号被反弹回来。在这里,我们展示了在自发宇称-时间对称相变点附近的片上单向无反射光学超材料的实验实现,其中从一侧的反射被显著抑制。这是通过在设计的宇称-时间超材料的复介电常数平面上设计相应的光学性质来实现的。数值模拟和实验验证一致地展示了在 1550nm 左右波长处具有高对比度的非对称反射。在相应的宇称-时间异常点上展示的单向现象证实了基于其性质在芯片上创建复杂的宇称-时间超材料和光学器件的可行性。