Karademir Ertugrul, Balci Sinan, Kocabas Coskun, Aydinli Atilla
Opt Lett. 2014 Oct 1;39(19):5697-700. doi: 10.1364/OL.39.005697.
Controlling plasmon-exciton coupling through band gap engineering of plasmonic crystals is demonstrated in the Kretschmann configuration. When the flat metal surface is textured with a sinusoidal grating only in one direction, using laser interference lithography, it exhibits a plasmonic band gap because of the Bragg scattering of surface plasmon polaritons on the plasmonic crystals. The contrast of the grating profile determines the observed width of the plasmonic band gap and hence allows engineering of the plasmonic band gap. In this work, resonant coupling between the molecular resonance of a J-aggregate dye and the plasmonic resonance of a textured metal film is extensively studied through plasmonic band gap engineering. Polarization dependent spectroscopic reflection measurements probe the spectral overlap occurring between the molecular resonance and the plasmonic resonance. The results indicate that plasmon-exciton interaction is attenuated in the band gap region along the grating direction.
在克瑞茨曼配置中展示了通过等离子体晶体的带隙工程来控制等离子体-激子耦合。当仅在一个方向上使用激光干涉光刻技术在平坦金属表面刻有正弦光栅时,由于表面等离激元极化激元在等离子体晶体上的布拉格散射,它会呈现出等离子体带隙。光栅轮廓的对比度决定了观察到的等离子体带隙宽度,从而实现了等离子体带隙的工程调控。在这项工作中,通过等离子体带隙工程广泛研究了J-聚集体染料的分子共振与纹理化金属膜的等离子体共振之间的共振耦合。偏振相关的光谱反射测量探测了分子共振和等离子体共振之间发生的光谱重叠。结果表明,在沿光栅方向的带隙区域中等离子体-激子相互作用减弱。