Department of Physics and Astronomy, Center for Subwavelength Optics, Seoul National University, Seoul 151-747, Korea.
Nat Commun. 2011 Aug 23;2:451. doi: 10.1038/ncomms1430.
The nature of light as an electromagnetic wave with transverse components has been confirmed using optical polarizers, which are sensitive to the orientation of the electric field. Recent advances in nanoscale optical technologies demand their magnetic counterpart, which can sense the orientation of the optical magnetic field. Here we report that subwavelength metallic apertures on infinite plane predominantly sense the magnetic field of light, establishing the orientation of the magnetic component of light as a separate entity from its electric counterpart. A subwavelength aperture combined with a tapered optical fibre probe can also serve as a nanoscale polarization analyser for the optical magnetic field, analogous to a nanoparticle sensing the local electric polarization. As proof of its functionality, we demonstrate the measurement of a magnetic field orientation that is parallel to the electric field, as well as a circularly polarized magnetic field in the presence of a linearly polarized electric field.
光作为横波的电磁本质已经通过对光的偏振态敏感的光学偏光镜得到了证实。最近纳米光学技术的进展需要其磁学对应物,它可以感应光的磁场的方向。在这里,我们报告说,无限大平面上的亚波长金属孔主要感应光的磁场,从而确定光的磁场分量与电场分量是作为独立实体存在的。一个亚波长的孔径与锥形光纤探头相结合,也可以作为光的磁场的纳米级偏振分析仪,类似于纳米粒子感应局部电场极化的情况。作为其功能的证明,我们演示了对与电场平行的磁场方向以及在存在线性偏振电场的情况下的圆偏振磁场的测量。