Electromagnetic and Acoustic Materials Group, Department of Physics and Astronomy, University of Exeter, Exeter EX4 4QL, England.
Phys Rev Lett. 2013 May 31;110(22):223602. doi: 10.1103/PhysRevLett.110.223602. Epub 2013 May 30.
Reciprocity is fundamental to light transport and is a concept that holds also in rather complex systems. Yet, reciprocity can be switched off even in linear, isotropic, and passive media by setting the material structure into motion. In highly dispersive multilayers this leads to a fairly large forward-backward asymmetry in the pulse transmission. Moreover, in multilevel systems, this transport phenomenon can be all-optically enhanced. For atomic multilayer structures made of three-level cold 87Rb atoms, for instance, forward-backward transmission contrast around 95% can be obtained already at atomic speeds in the meter per second range. The scheme we illustrate may open up avenues for optical isolation that were not previously accessible.
互易性是光传输的基础,也是相当复杂的系统中存在的一个概念。然而,通过使材料结构运动,即使在线性、各向同性和无源介质中,互易性也可以被关闭。在高度色散的多层介质中,这会导致脉冲传输的前后不对称相当大。此外,在多层系统中,这种传输现象可以全光增强。例如,对于由三能级冷 87Rb 原子组成的原子多层结构,在原子速度达到米每秒量级时,就可以获得约 95%的前后传输对比度。我们所说明的方案可能为以前无法实现的光学隔离开辟途径。