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光学超表面路线图。

Roadmap for Optical Metasurfaces.

作者信息

Kuznetsov Arseniy I, Brongersma Mark L, Yao Jin, Chen Mu Ku, Levy Uriel, Tsai Din Ping, Zheludev Nikolay I, Faraon Andrei, Arbabi Amir, Yu Nanfang, Chanda Debashis, Crozier Kenneth B, Kildishev Alexander V, Wang Hao, Yang Joel K W, Valentine Jason G, Genevet Patrice, Fan Jonathan A, Miller Owen D, Majumdar Arka, Fröch Johannes E, Brady David, Heide Felix, Veeraraghavan Ashok, Engheta Nader, Alù Andrea, Polman Albert, Atwater Harry A, Thureja Prachi, Paniagua-Dominguez Ramon, Ha Son Tung, Barreda Angela I, Schuller Jon A, Staude Isabelle, Grinblat Gustavo, Kivshar Yuri, Peana Samuel, Yelin Susanne F, Senichev Alexander, Shalaev Vladimir M, Saha Soham, Boltasseva Alexandra, Rho Junsuk, Oh Dong Kyo, Kim Joohoon, Park Junghyun, Devlin Robert, Pala Ragip A

机构信息

Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR), 2 Fusionopolis Way, Innovis #08-03, Singapore 138634, Republic of Singapore.

Geballe Laboratory for Advanced Materials, Stanford University, Stanford, California 94305, United States.

出版信息

ACS Photonics. 2024 Feb 27;11(3):816-865. doi: 10.1021/acsphotonics.3c00457. eCollection 2024 Mar 20.

Abstract

Metasurfaces have recently risen to prominence in optical research, providing unique functionalities that can be used for imaging, beam forming, holography, polarimetry, and many more, while keeping device dimensions small. Despite the fact that a vast range of basic metasurface designs has already been thoroughly studied in the literature, the number of metasurface-related papers is still growing at a rapid pace, as metasurface research is now spreading to adjacent fields, including computational imaging, augmented and virtual reality, automotive, display, biosensing, nonlinear, quantum and topological optics, optical computing, and more. At the same time, the ability of metasurfaces to perform optical functions in much more compact optical systems has triggered strong and constantly growing interest from various industries that greatly benefit from the availability of miniaturized, highly functional, and efficient optical components that can be integrated in optoelectronic systems at low cost. This creates a truly unique opportunity for the field of metasurfaces to make both a scientific and an industrial impact. The goal of this Roadmap is to mark this "golden age" of metasurface research and define future directions to encourage scientists and engineers to drive research and development in the field of metasurfaces toward both scientific excellence and broad industrial adoption.

摘要

超表面最近在光学研究中崭露头角,它能提供独特的功能,可用于成像、波束形成、全息术、偏振测量等诸多方面,同时保持器件尺寸较小。尽管文献中已经对大量基本的超表面设计进行了深入研究,但与超表面相关的论文数量仍在快速增长,因为超表面研究目前正在扩展到相邻领域,包括计算成像、增强现实和虚拟现实、汽车、显示、生物传感、非线性、量子和拓扑光学、光学计算等等。与此同时,超表面在更紧凑的光学系统中执行光学功能的能力引发了各行业的强烈且持续增长的兴趣,这些行业从能够以低成本集成到光电子系统中的小型化、高功能且高效的光学组件中受益匪浅。这为超表面领域创造了一个真正独特的机会,既能产生科学影响,又能产生产业影响。本路线图的目标是标志超表面研究的这个“黄金时代”,并确定未来方向,以鼓励科学家和工程师推动超表面领域的研发朝着科学卓越和广泛的产业应用发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/15e5/10971570/1e3aa02cd50b/ph3c00457_0001.jpg

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