Tang Tingting, Qin Jun, Xie Jianliang, Deng Longjiang, Bi Lei
Opt Express. 2014 Nov 3;22(22):27042-55. doi: 10.1364/OE.22.027042.
We report a theoretical study of the enhanced Goos-Hänchen (GH) effect in a prism-waveguide coupling system with a magneto-optic thin film of Ce doped Y(3)Fe(5)O(12) (CeYIG). By magnetizing the CeYIG thin film along different directions, a variation of the GH shift can be observed, which is named as the MOGH (magneto-optical Goos-Hänchen) effect. The applied magnetic field direction is found to cause MOGH effect for light with different polarizations. As example systems, enhanced GH shift and MOGH effect is observed in both prism/Air/CeYIG/SiO(2) and prism/Au/CeYIG/SiO(2) structures, by applying opposite magnetic field across the CeYIG layer in a transverse magneto-optical Kerr effect (TMOKE) configuration. The GH and MOGH effect as a function of layer thicknesses, material refractive indices and magneto-optical properties are systematically simulated and discussed. It is observed that the coupling layer and MO layer thickness plays an important role of controlling the MOGH effect in the prism/Au/CeYIG/SiO(2) plasmonic waveguide structure. The MOGH effect shows high sensitivity to applied magnetic field and index variations, making it promising for applications such as optical switches, modulators, and chemical or biomedical index sensors.
我们报道了对具有掺铈钇铁石榴石(CeYIG)磁光薄膜的棱镜 - 波导耦合系统中增强的古斯 - 汉欣(GH)效应的理论研究。通过沿不同方向磁化CeYIG薄膜,可以观察到GH位移的变化,这被命名为磁光古斯 - 汉欣(MOGH)效应。发现施加的磁场方向会对不同偏振的光产生MOGH效应。作为示例系统,在棱镜/空气/CeYIG/SiO₂和棱镜/金/CeYIG/SiO₂结构中,通过在横向磁光克尔效应(TMOKE)配置中在CeYIG层上施加相反的磁场,观察到了增强的GH位移和MOGH效应。系统地模拟和讨论了GH和MOGH效应与层厚度、材料折射率和磁光特性的关系。观察到在棱镜/金/CeYIG/SiO₂等离子体波导结构中,耦合层和磁光层的厚度在控制MOGH效应方面起着重要作用。MOGH效应对外加磁场和折射率变化表现出高灵敏度,使其在诸如光开关、调制器以及化学或生物医学折射率传感器等应用中具有潜力。