Banzer Peter, Kindler Jochen, Quabis Susanne, Peschel Ulf, Leuchs Gerd
Max Planck Institute for the Science of Light, Guenther-Scharowsky-Str. 1, D-91058 Erlangen, Germany.
Opt Express. 2010 May 10;18(10):10896-904. doi: 10.1364/OE.18.010896.
We investigate experimentally the transmission properties of single sub-wavelength coaxial apertures in thin metal films (t = 110 nm). Enhanced transmission through a single sub-wavelength coaxial aperture illuminated with a strongly focused radially polarized light beam is reported. In our experiments we achieved up to four times enhanced transmission through a single coaxial aperture as compared to a (hollow) circular aperture with the same outer diameter.We attribute this enhancement of transmission to the excitation of a TEM-mode for illumination with radially polarized light inside the single coaxial aperture. A strong polarization contrast is observed between the transmission for radially and azimuthally polarized illumination. Furthermore, the observed transmission through a single coaxial aperture can be strongly reduced if surface plasmons are excited. The experimental results are in good agreement with finite difference time domain (FDTD) simulations.
我们通过实验研究了薄金属膜(t = 110 nm)中单个亚波长同轴孔径的传输特性。报道了通过用强聚焦径向偏振光束照射的单个亚波长同轴孔径实现的增强传输。在我们的实验中,与具有相同外径的(空心)圆形孔径相比,通过单个同轴孔径实现了高达四倍的传输增强。我们将这种传输增强归因于在单个同轴孔径内用径向偏振光照明时TEM模式的激发。在径向和方位角偏振照明的传输之间观察到强烈的偏振对比度。此外,如果表面等离子体被激发,通过单个同轴孔径观察到的传输会大大降低。实验结果与有限差分时域(FDTD)模拟结果吻合良好。