Won Seungjai, Choi Seungman, Kim Taewon, Kim Byunggi, Kim Seung-Woo, Kim Young-Jin
Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology, 291 Daehak-ro, Daejeon, Republic of Korea.
Nanophotonics. 2023 Jun 23;12(16):3373-3383. doi: 10.1515/nanoph-2023-0300. eCollection 2023 Aug.
The ultraviolet (UV) wavelength regime is attracting increasing attention because of its growing demand in semiconductor lithography, spectroscopy, and imaging applications owing to its high spatial resolution and high photon energy. However, beam shape control, beam delivery, and wavefront manipulation of UV laser beams usually require highly dedicated optics because of the strong UV absorption of most optical materials and the high surface precision required for tailoring short wavelengths, thus limiting a broader application of UV wavelengths. Here, we demonstrate a novel dynamic UV harmonic beam pattern control by manipulating the near-infrared (NIR) wavefront of the fundamental wavelength of a femtosecond pulse laser. The temporal and spatial coherences in an optical harmonic generation are known to be well preserved. Therefore, the spatial beam distribution of UV harmonic beams ( = 400 and 266 nm for second and third harmonics, respectively) could be readily controlled by tailoring the wavefront of the driving infrared (IR) beam, and this approach can be expanded to higher-order harmonics in the vacuum ultraviolet (VUV) or extreme ultraviolet (EUV) regimes. Moreover, this enables fast polarization-sensitive UV beam switching at a speed of 6.7 frames/s in a depth-resolving manner. To efficiently separate the UV beam from the strong fundamental IR background beam, a non-collinear harmonic generation configuration is introduced. This facile dynamic UV beam control technique enables arbitrary wavefront control of UV laser beams for high-precision laser patterning, polarization-sensitive encryption, and 3D holograms.
紫外(UV)波长区域因其在半导体光刻、光谱学和成像应用中日益增长的需求而受到越来越多的关注,这是由于其具有高空间分辨率和高光子能量。然而,由于大多数光学材料对紫外线的强烈吸收以及对短波长进行整形所需的高表面精度,紫外激光束的光束形状控制、光束传输和波前操纵通常需要高度专用的光学元件,从而限制了紫外波长的更广泛应用。在此,我们展示了一种通过操纵飞秒脉冲激光基波波长的近红外(NIR)波前来实现新型动态紫外谐波光束图案控制的方法。已知光学谐波产生中的时间和空间相干性能够得到很好的保持。因此,通过调整驱动红外(IR)光束的波前,可以很容易地控制紫外谐波光束的空间光束分布(二次谐波和三次谐波分别为 = 400 和 266 nm),并且这种方法可以扩展到真空紫外(VUV)或极紫外(EUV)区域的高阶谐波。此外,这使得能够以深度分辨的方式以 6.7 帧/秒的速度进行快速的偏振敏感紫外光束切换。为了有效地将紫外光束与强基波红外背景光束分离,引入了一种非共线谐波产生配置。这种简便的动态紫外光束控制技术能够对紫外激光束进行任意波前控制,以用于高精度激光图案化、偏振敏感加密和 3D 全息图。