Department of Electrical Engineering, Hamburg University of Technology, Hamburg D-21073, Germany. serebryannikov@tu‑harburg.de
Opt Lett. 2012 Dec 1;37(23):4844-6. doi: 10.1364/OL.37.004844.
Wideband suppression of zero order and relevant strongly asymmetric transmission can be obtained in photonic crystal gratings that are made of linear isotropic materials and show the broken structural (axial) symmetry, even if zero diffraction order may be coupled to a Floquet-Bloch (FB) wave at the incidence and exit interfaces. The studied mechanism requires that the peculiar diffractions at the corrugated exit interface inspire strong energy transfer to higher orders, including those not coupled to an FB wave. At the opposite direction of incidence, transmission due to zero and some higher orders that may be coupled at the corrugated input interface can vanish. This leads to the alternative scenario of wideband unidirectional transmission, which itself does not need but can coexist with the other scenario based on the merging of asymmetric diffraction and dispersion of the FB mode.
在由线性各向同性材料制成且显示出结构(轴向)对称性破缺的光子晶体光栅中,可以实现零级和相关强非对称传输的宽带抑制,即使在入射和出射界面处,零级衍射可能与 Floquet-Bloch(FB)波耦合。所研究的机制要求在波纹出射界面处的特殊衍射激发强烈的能量转移到更高阶,包括那些与 FB 波不耦合的高阶。在相反的入射方向,由于在波纹输入界面处可能耦合的零级和一些高阶的传输可以消失。这导致了宽带单向传输的替代方案,该方案本身不需要,但可以与基于 FB 模式的非对称衍射和色散合并的另一个方案共存。