Go Gi-Hyun, Lee Dong-Gu, Oh Jaeyeon, Song Gookho, Lee Doeon, Jang Mooseok
Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, Republic of Korea.
Light Sci Appl. 2024 Aug 12;13(1):187. doi: 10.1038/s41377-024-01528-9.
Shack-Hartmann wavefront sensors measure the local slopes of an incoming wavefront based on the displacement of focal spots created by a lenslet array, serving as key components for adaptive optics for astronomical and biomedical imaging. Traditionally, the challenges in increasing the density and the curvature of the lenslet have limited the use of such wavefront sensors in characterizing slowly varying wavefront structures. Here, we develop a metasurface-enhanced Shack-Hartmann wavefront sensor (meta SHWFS) to break this limit, considering the interplay between the lenslet parameters and the performance of SHWFS. We experimentally validate the meta SHWFS with a sampling density of 5963 per mm and a maximum acceptance angle of 8° which outperforms the traditional SFWFS by an order of magnitude. Furthermore, to the best of our knowledge, we demonstrate the first use of a wavefront sensing scheme in single-shot phase imaging of highly complex patterns, including biological tissue patterns. The proposed approach opens up new opportunities in incorporating exceptional light manipulation capabilities of the metasurface platform in complex wavefront characterization.
夏克-哈特曼波前传感器基于微透镜阵列产生的焦斑位移来测量入射波前的局部斜率,是天文和生物医学成像自适应光学的关键组件。传统上,增加微透镜密度和曲率方面的挑战限制了此类波前传感器在表征缓慢变化的波前结构中的应用。在此,考虑到微透镜参数与夏克-哈特曼波前传感器性能之间的相互作用,我们开发了一种超表面增强型夏克-哈特曼波前传感器(超表面SHWFS)来突破这一限制。我们通过实验验证了超表面SHWFS,其采样密度为每毫米5963个,最大接受角为8°,性能比传统的夏克-哈特曼波前传感器高出一个数量级。此外,据我们所知,我们首次展示了波前传感方案在包括生物组织图案在内的高度复杂图案的单次相位成像中的应用。所提出的方法为将超表面平台卓越的光操纵能力纳入复杂波前表征开辟了新机遇。