Genevet Patrice, Dellinger Jean, Blanchard Romain, She Alan, Petit Marlene, Cluzel Benoit, Kats Mikhail A, de Fornel Frederique, Capasso Federico
School of Engineering and Applied Sciences, Harvard University, Cambridge, Massachusetts 02138, USA.
Opt Express. 2013 Apr 22;21(8):10295-300. doi: 10.1364/OE.21.010295.
By analogy to the three dimensional optical bottle beam, we introduce the plasmonic bottle beam: a two dimensional surface wave which features a lattice of plasmonic bottles, i.e. alternating regions of bright focii surrounded by low intensities. The two-dimensional bottle beam is created by the interference of a non-diffracting beam, a cosine-Gaussian beam, and a plane wave, thus giving rise to a non-diffracting complex intensity distribution. By controlling the propagation constant of the cosine-Gauss beam, the size and number of plasmonic bottles can be engineered. The two dimensional lattice of hot spots formed by this new plasmonic wave could have applications in plasmonic trapping.
通过类比三维光学瓶形光束,我们引入了等离子体瓶形光束:一种二维表面波,其特征是具有等离子体瓶的晶格,即由低强度区域包围的明亮焦点交替区域。二维瓶形光束是由非衍射光束、余弦高斯光束和平面波的干涉产生的,从而产生非衍射的复强度分布。通过控制余弦高斯光束的传播常数,可以设计等离子体瓶的尺寸和数量。由这种新的等离子体波形成的二维热点晶格可应用于等离子体捕获。