Department of Physics, King's College London, Strand, London WC2R 2LS, United Kingdom.
Sci Rep. 2014 Nov 28;4:7234. doi: 10.1038/srep07234.
Plasmonic crystals provide many passive and active optical functionalities, including enhanced sensing, optical nonlinearities, light extraction from LEDs and coupling to and from subwavelength waveguides. Here we study, both experimentally and numerically, the coherent control of SPP beam excitation in finite size plasmonic crystals under focussed illumination. The correct combination of the illuminating spot size, its position relative to the plasmonic crystal, wavelength and polarisation enables the efficient shaping and directionality of SPP beam launching. We show that under strongly focussed illumination, the illuminated part of the crystal acts as an antenna, launching surface plasmon waves which are subsequently filtered by the surrounding periodic lattice. Changing the illumination conditions provides rich opportunities to engineer the SPP emission pattern. This offers an alternative technique to actively modulate and control plasmonic signals, either via micro- and nano-electromechanical switches or with electro- and all-optical beam steering which have direct implications for the development of new integrated nanophotonic devices, such as plasmonic couplers and switches and on-chip signal demultiplexing. This approach can be generalised to all kinds of surface waves, either for the coupling and discrimination of light in planar dielectric waveguides or the generation and control of non-diffractive SPP beams.
等离子体激元晶体提供了许多被动和主动的光学功能,包括增强传感、光学非线性、从 LED 提取光以及与亚波长波导的耦合和分束。在这里,我们在聚焦照明下实验和数值研究了有限尺寸等离子体激元晶体中 SPP 光束激发的相干控制。照明光斑尺寸、其相对于等离子体晶体的位置、波长和偏振的正确组合,实现了 SPP 光束发射的高效整形和定向。我们表明,在强聚焦照明下,晶体的被照明部分充当天线,发射表面等离子体波,随后被周围的周期性晶格过滤。改变照明条件为 SPP 发射模式的工程设计提供了丰富的机会。这为主动调制和控制等离子体信号提供了一种替代技术,无论是通过微纳机电开关还是电光和全光光束转向,这都对新的集成纳米光子器件的发展具有直接影响,如等离子体耦合器和开关以及片上信号解复用。这种方法可以推广到各种表面波,无论是用于在平面介电波导中耦合和区分光,还是用于产生和控制无衍射 SPP 光束。