Department of Physical Electronics, Fleischman Faculty of Engineering, Tel Aviv University, Tel Aviv 69978, Israel.
Phys Rev Lett. 2014 Jan 17;112(2):023903. doi: 10.1103/PhysRevLett.112.023903. Epub 2014 Jan 15.
We demonstrate the generation of self-accelerating surface plasmon beams along arbitrary caustic curvatures. These plasmonic beams are excited by free-space beams through a two-dimensional binary plasmonic phase mask, which provides the missing momentum between the two beams in the direction of propagation and sets the required phase for the plasmonic beam in the transverse direction. We examine the cases of paraxial and nonparaxial curvatures and show that this highly versatile scheme can be designed to produce arbitrary plasmonic self-accelerating beams. Several different plasmonic beams, which accelerate along polynomial and exponential trajectories, are demonstrated both numerically and experimentally, with a direct measurement of the plasmonic light intensity using a near-field scanning optical microscope.
我们展示了沿着任意焦散曲线产生自加速表面等离激元光束的方法。这些等离激元光束是通过二维二元等离激元相位掩模由自由空间光束激发产生的,该相位掩模在传播方向上提供了两束光之间缺失的动量,并在横向方向上设置了等离激元光束所需的相位。我们研究了傍轴和非傍轴曲率的情况,并表明这种多功能方案可以设计用来产生任意的等离激元自加速光束。我们通过数值和实验演示了几种不同的沿着多项式和指数轨迹加速的等离激元光束,使用近场扫描光学显微镜直接测量了等离激元光强度。