Yang Younghwan, Seong Junhwa, Choi Minseok, Park Junkyeong, Kim Gyeongtae, Kim Hongyoon, Jeong Junhyeon, Jung Chunghwan, Kim Joohoon, Jeon Gyoseon, Lee Kyung-Il, Yoon Dong Hyun, Rho Junsuk
Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, 37673, Republic of Korea.
Department of Chemical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, 37673, Republic of Korea.
Light Sci Appl. 2023 Jun 20;12(1):152. doi: 10.1038/s41377-023-01169-4.
Metasurfaces have been continuously garnering attention in both scientific and industrial fields, owing to their unprecedented wavefront manipulation capabilities using arranged subwavelength artificial structures. To date, research has mainly focused on the full control of electromagnetic characteristics, including polarization, phase, amplitude, and even frequencies. Consequently, versatile possibilities of electromagnetic wave control have been achieved, yielding practical optical components such as metalenses, beam-steerers, metaholograms, and sensors. Current research is now focused on integrating the aforementioned metasurfaces with other standard optical components (e.g., light-emitting diodes, charged-coupled devices, micro-electro-mechanical systems, liquid crystals, heaters, refractive optical elements, planar waveguides, optical fibers, etc.) for commercialization with miniaturization trends of optical devices. Herein, this review describes and classifies metasurface-integrated optical components, and subsequently discusses their promising applications with metasurface-integrated optical platforms including those of augmented/virtual reality, light detection and ranging, and sensors. In conclusion, this review presents several challenges and prospects that are prevalent in the field in order to accelerate the commercialization of metasurfaces-integrated optical platforms.
超表面因其利用排列的亚波长人工结构实现的前所未有的波前操纵能力,在科学和工业领域一直备受关注。迄今为止,研究主要集中在对电磁特性的全面控制,包括偏振、相位、幅度甚至频率。因此,已经实现了电磁波控制的多种可能性,产生了诸如超透镜、光束转向器、超全息图和传感器等实用光学元件。当前的研究现在集中于将上述超表面与其他标准光学元件(例如发光二极管、电荷耦合器件、微机电系统、液晶、加热器、折射光学元件、平面波导、光纤等)集成,以随着光学器件的小型化趋势实现商业化。在此,本综述描述并分类了超表面集成光学元件,随后讨论了它们在包括增强/虚拟现实、光探测和测距以及传感器等超表面集成光学平台方面的应用前景。总之,本综述提出了该领域中普遍存在的若干挑战和前景,以加速超表面集成光学平台的商业化。