Mahmoud Ahmed M, Davoyan Arthur R, Engheta Nader
Department of Electrical and Systems Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
Nat Commun. 2015 Sep 28;6:8359. doi: 10.1038/ncomms9359.
One-way propagation of light, analogous to the directional flow of electrons in the presence of electric potential difference, has been an important goal in the wave-matter interaction. Breaking time-reversal symmetry in photonic flows is faced with challenges different from those for electron flows. In recent years several approaches and methods have been offered towards achieving this goal. Here we investigate another systematic approach to design all-passive relatively high-throughput metastructures that exhibit nonreciprocal properties and achieve wave-flow isolation. Moreover, we build on those findings and propose a paradigm for a quasi-two-dimensional metastructure that mimics the nonreciprocal property of Faraday rotation without using any magnetic or electric biasing. We envision that the proposed approaches may serve as a building block for all-passive time-reversal symmetry breaking with potential applications for future nonreciprocal systems and devices.
光的单向传播类似于存在电势差时电子的定向流动,一直是波与物质相互作用中的一个重要目标。打破光子流中的时间反演对称性面临着与电子流不同的挑战。近年来,已经提出了几种实现这一目标的方法和途径。在此,我们研究了另一种系统方法,以设计出具有非互易特性并实现波流隔离的全被动、相对高通量的超结构。此外,我们基于这些发现,提出了一种准二维超结构的范例,该超结构无需任何磁或电偏置即可模拟法拉第旋转的非互易特性。我们设想,所提出的方法可能成为全被动时间反演对称性破缺的基石,有望应用于未来的非互易系统和器件。