Vienna Center for Quantum Science and Technology, TU Wien-Atominstitut, Stadionallee 2, 1020 Vienna, Austria.
Science. 2014 Oct 3;346(6205):67-71. doi: 10.1126/science.1257671. Epub 2014 Sep 4.
Controlling the flow of light with nanophotonic waveguides has the potential of transforming integrated information processing. Because of the strong transverse confinement of the guided photons, their internal spin and their orbital angular momentum get coupled. Using this spin-orbit interaction of light, we break the mirror symmetry of the scattering of light with a gold nanoparticle on the surface of a nanophotonic waveguide and realize a chiral waveguide coupler in which the handedness of the incident light determines the propagation direction in the waveguide. We control the directionality of the scattering process and can direct up to 94% of the incoupled light into a given direction. Our approach allows for the control and manipulation of light in optical waveguides and new designs of optical sensors.
用光导波来控制光的传输具有改变集成信息处理的潜力。由于导光光子具有很强的横向约束,它们的内部自旋和轨道角动量会相互耦合。利用光的这种自旋-轨道相互作用,我们打破了金纳米粒子在纳米光导波导表面散射的镜像对称,并实现了手性波导耦合器,其中入射光的手性决定了波导中的传播方向。我们控制散射过程的方向性,可以将高达 94%的入射光引导到给定的方向。我们的方法允许控制和操纵光在光导波中的传输,并为光学传感器的新设计提供可能。