Shang Wuyun, Xiao Fajun, Han Lei, Premaratne Malin, Mei Ting, Zhao Jianlin
MOE Key Laboratory of Material Physics and Chemistry under Extraordinary Conditions, and Shaanxi Key Laboratory of Optical Information Technology, School of Science, Northwestern Polytechnical University, Xi'an 710129, People's Republic of China.
J Phys Condens Matter. 2018 Feb 14;30(6):064004. doi: 10.1088/1361-648X/aaa4ce.
We show that an azimuthally polarized beam (APB) excitation of a plasmonic Fano structure made by coupling a split-ring resonator (SRR) to a nanoarc can enhance second harmonic generation (SHG). Strikingly, an almost 30 times enhancement in SHG peak intensity can be achieved when the excitation is switched from a linearly polarized beam (LPB) to an APB. We attribute this significant enhancement of SHG to the corresponding increase in the local field intensity at the fundamental frequency of SHG, resulting from the improved conversion efficiency between the APB excitation and the plasmonic modes of the Fano structure. We also show that unlike LPB, APB excitation creates a symmetric SHG radiation pattern. This effect can be understood by considering an interference model in which the APB can change the total SHG far-field radiation by modifying the amplitudes and phases of two waves originating from the individual SRR and nanoarc of the Fano structure.
我们表明,通过将开口环谐振器(SRR)与纳米弧耦合制成的等离子体法诺结构的方位角偏振光束(APB)激发可以增强二次谐波产生(SHG)。引人注目的是,当激发从线偏振光束(LPB)切换到APB时,SHG峰值强度可实现近30倍的增强。我们将SHG的这种显著增强归因于SHG基频处局部场强的相应增加,这是由于APB激发与法诺结构的等离子体模式之间转换效率的提高所致。我们还表明,与LPB不同,APB激发会产生对称的SHG辐射图案。通过考虑一种干涉模型可以理解这种效应,在该模型中,APB可以通过修改源自法诺结构的单个SRR和纳米弧的两束波的幅度和相位来改变总的SHG远场辐射。