Gan Qiaoqiang, Gao Yongkang, Bartoli Filbert J
Center for Optical Technologies, Electrical and Computer Engineering Department Lehigh University, Bethlehem, PA 18015, USA.
Opt Express. 2009 Nov 9;17(23):20747-55. doi: 10.1364/OE.17.020747.
Vertical plasmonic Mach-Zehnder Interferometers are investigated theoretically and experimentally, and their potential for ultra-sensitive optical sensing is discussed. Plasmonic interferences arise from coherently coupled pairs of subwavelength slits, illuminated by a broadband optical source, and this interference modulates the intensity of the far-field scattering spectrum. Experimental results, obtained using a simple experimental setup, are presented to validate theoretically predicted interferences introduced by the surface plasmon modes on top and bottom surfaces of a metal film. By observing the wavelength shift of the peaks or valleys of the interference pattern, this highly compact device has the potential to achieve a very high sensitivity relative to other nanoplasmonic architectures reported.
对垂直等离子体马赫-曾德尔干涉仪进行了理论和实验研究,并讨论了其在超灵敏光学传感方面的潜力。等离子体干涉源于由宽带光源照射的亚波长狭缝的相干耦合对,这种干涉调制了远场散射光谱的强度。给出了使用简单实验装置获得的实验结果,以验证理论预测的由金属膜顶面和底面的表面等离子体模式引入的干涉。通过观察干涉图案的峰或谷的波长移动,相对于所报道的其他纳米等离子体结构,这种高度紧凑的器件有潜力实现非常高的灵敏度。