Porfirev A P, Khonina S N, Khorin P A, Ivliev N A
Opt Lett. 2022 Oct 1;47(19):5080-5083. doi: 10.1364/OL.471236.
Laser patterning of thin films of materials is widely used for the fabrication of one-, two- and three-dimensional functional nanomaterials. Using structured laser beams with a complex structure of amplitude, phase, and polarization distributions allows one to significantly simplify and speed up the procedure of manufacturing nano- and microstructures with a complex shape, such as a spiral structure. Here, we demonstrate the use of vortex laser beams with a helical wavefront for the realization of spiral mass transfer in azopolymer films. The polarization sensitivity of this material allows us to demonstrate the formation of different three-dimensional structures in the case of linearly or circularly polarized vortex beams of different orders. The presented theoretical analysis shows that the profile of the fabricated structures is defined by the structure of the longitudinal component of the incident radiation, and thus can be easily controlled with the polarization state of the radiation without the need to change the amplitude-phase structure of the beam.
材料薄膜的激光图案化广泛应用于一维、二维和三维功能纳米材料的制造。使用具有复杂振幅、相位和偏振分布结构的结构化激光束,可以显著简化和加速制造具有复杂形状(如螺旋结构)的纳米和微结构的过程。在此,我们展示了使用具有螺旋波前的涡旋激光束在偶氮聚合物薄膜中实现螺旋质量转移。这种材料的偏振敏感性使我们能够在不同阶次的线偏振或圆偏振涡旋光束的情况下展示不同三维结构的形成。所给出的理论分析表明,制造结构的轮廓由入射辐射纵向分量的结构决定,因此可以通过辐射的偏振态轻松控制,而无需改变光束的振幅 - 相位结构。