Department of Electrical and Computer Engineering, The University of Texas at Austin, Austin, TX 78712, USA.
Nat Commun. 2013;4:2407. doi: 10.1038/ncomms3407.
Breaking time-reversal symmetry enables the realization of non-reciprocal devices, such as isolators and circulators, of fundamental importance in microwave and photonic communication systems. This effect is almost exclusively achieved today through magneto-optical phenomena, which are incompatible with integrated technology because of the required large magnetic bias. However, this is not the only option to break reciprocity. The Onsager-Casimir principle states that any odd vector under time reversal, such as electric current and linear momentum, can also produce a non-reciprocal response. These recently analysed alternatives typically work over a limited portion of the electromagnetic spectrum and/or are often characterized by weak effects, requiring large volumes of operation. Here we show that these limitations may be overcome by angular momentum-biased metamaterials, in which a properly tailored spatiotemporal modulation is azimuthally applied to subwavelength Fano-resonant inclusions, producing largely enhanced non-reciprocal response at the subwavelength scale, in principle applicable from radio to optical frequencies.
打破时间反演对称性使非互易器件(如隔离器和环行器)成为可能,这些器件在微波和光子通信系统中具有重要的基本作用。目前,这种效应几乎完全通过磁光现象来实现,由于需要大的磁场偏置,这些现象与集成技术不兼容。然而,打破互易性并不只有这一种选择。昂萨格-卡西米尔原理指出,任何在时间反演下的奇数向量,如电流和线性动量,也可以产生非互易响应。这些最近分析的替代方案通常在电磁频谱的有限部分起作用,或者通常具有较弱的效应,需要大量的操作。在这里,我们表明,通过角动量偏置超材料可以克服这些限制,在这种超材料中,适当的时空调制以角向方式施加于亚波长的 Fano 共振体,在亚波长尺度上产生了很大的增强的非互易响应,原则上可应用于从无线电波到光频的频率。