Zhang Kai-Xin, Shao Jian-Da, Hu Guo-Hang, Chai Ying-Jie, He Hong-Bo, Zhu Mei-Ping, Li Da-Wei, Liu Xiao-Feng
Laboratory of Thin Film Optics, Shanghai Institute of Optics and Fine Mechanics, No. 390 Qinghe Road, Jiading District, Shanghai 201800, China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.
Nanomaterials (Basel). 2021 Mar 16;11(3):742. doi: 10.3390/nano11030742.
To speed up the fabrication of optical metamaterials by making use of the fast speed advantage of femtosecond laser preparation, a metamaterial appropriate for femtosecond laser processing was designed, and the interaction between femtosecond laser and metal-dielectric-metal fishnet stacks was investigated in detail. Two kinds of processing mechanisms, thermal melting and stress break, were revealed during the fabrication. The thermal melting process, dominated by the interaction of femtosecond laser with metals, makes the upper and lower metal layers adhere to each other, which leads to the magnetic resonance impossible. The stress break process, dominated by the interaction of femtosecond laser with dielectrics, can keep the upper and lower metal coatings isolated. Fishnet optical metamaterial was fabricated by femtosecond laser-induced stress break technique, using back side ablation, high numerical aperture and super-Gaussian beam. The resolution and speed can reach 500 nm, and 100 units/s, respectively. Spectrophotometer measurement results proved that the magnetic resonances were found in the fishnet nanostructure. The theoretical refractive index of the metamaterial on a glass substrate reached -0.12 at the wavelength of 3225 nm. It proved that femtosecond laser-induced stress break was a good and fast tool during the fabrication of optical metamaterials.
为利用飞秒激光制备的快速优势来加速光学超材料的制造,设计了一种适用于飞秒激光加工的超材料,并详细研究了飞秒激光与金属-电介质-金属渔网堆栈之间的相互作用。在制造过程中揭示了两种加工机制,即热熔和应力断裂。由飞秒激光与金属相互作用主导的热熔过程会使上下金属层相互粘连,导致磁共振无法实现。由飞秒激光与电介质相互作用主导的应力断裂过程可使上下金属涂层保持隔离。采用背面烧蚀、高数值孔径和超高斯光束,通过飞秒激光诱导应力断裂技术制备了渔网光学超材料。分辨率和速度分别可达500 nm和100单元/秒。分光光度计测量结果证明,在渔网纳米结构中发现了磁共振。在波长为3225 nm时,玻璃基片上超材料的理论折射率达到-0.12。这证明飞秒激光诱导应力断裂是光学超材料制造过程中一种良好且快速的工具。