Department of Electrical and Computer Engineering, Iowa State University, Ames, Iowa 50011, USA.
Nanoscale. 2016 Feb 28;8(8):4657-66. doi: 10.1039/c5nr07903a.
We experimentally and theoretically demonstrate that a continuous gold film on a periodically textured substrate exhibits extraordinary optical transmission, even though no holes were etched in the film. Our film synthesis started by nanoimprinting a periodic array of nanocups with a period of ∼750 nm on a polystyrene film over a glass substrate. A thin non-conformal gold film was sputter-deposited on the polystyrene by angle-directed deposition. The gold film was continuous with spatial thickness variation, the film being thinnest at the bottom of the nanocup. Measurements revealed an extraordinary transmission peak at a wavelength just smaller than the period, with an enhancement of ∼2.5 compared to the classically expected value. Scattering matrix simulations model well the transmission and reflectance measurements when an ultrathin gold layer (∼5 nm), smaller than the skin depth is retained at the bottom of the nanocups. Electric field intensities are enhanced by >100 within the nanocup, and ∼40 in the ultrathin gold layer causing transmission through it. We show a wavelength red-shift of ∼30 nm in the extraordinary transmission peak when the nanocups are coated with a thin film of a few nanometers, which can be utilized for biosensing. The continuous corrugated metal films are far simpler structures to observe extraordinary transmission, circumventing the difficult process of etching the metal film. Such continuous metal films with ultrathin regions are simple platforms for non-linear optics, plasmonics, and biological and chemical sensing.
我们通过实验和理论证明,即使在金膜上没有刻蚀孔,周期性纹理衬底上的连续金膜也会表现出非凡的光透射。我们的薄膜合成始于在玻璃衬底上的聚苯乙烯薄膜上纳米压印具有约 750nm 周期的纳米杯的周期性阵列。通过角向沉积在聚苯乙烯上溅射沉积了一层薄的非共形金膜。金膜具有空间厚度变化的连续性,在纳米杯的底部最薄。测量结果显示,在波长略小于周期的位置出现了一个非凡的透射峰,与经典预期值相比增强了约 2.5。当保留在纳米杯底部的超薄金层(约 5nm)小于趋肤深度时,散射矩阵模拟很好地模拟了透射和反射测量。纳米杯内的电场强度增强了>100,在超薄金层中增强了约 40,从而导致其透过。当纳米杯被几纳米厚的薄膜覆盖时,我们观察到非凡透射峰的波长红移约 30nm,这可用于生物传感。连续的波纹金属膜是观察非凡透射的远更简单的结构,避免了金属膜刻蚀的困难过程。具有超薄区域的这种连续金属膜是非线性光学、等离子体学以及生物和化学传感的简单平台。