Metalasers with arbitrarily shaped wavefront

成果类型:
Article
署名作者:
Zeng, Yixuan; Sha, Xinbo; Zhang, Chi; Zhang, Yao; Deng, Huachun; Lu, Haipeng; Qu, Geyang; Xiao, Shumin; Yu, Shaohua; Kivshar, Yuri; Song, Qinghai
署名单位:
Harbin Institute of Technology; Peng Cheng Laboratory; Australian National University; Shanxi University
刊物名称:
Nature
ISSN/ISSBN:
0028-2617
DOI:
10.1038/s41586-025-09275-6
发表日期:
2025-07-31
关键词:
semiconductor-lasers emission light radiation
摘要:
Integrated nanolasers have been explored for decades owing to their important role in many applications, ranging from optical information processing and communications to medical treatments1, 2, 3, 4, 5-6. Although polarization, orbital angular momentum and directivity of nanolasers have been successfully manipulated7, 8-9, neither their laser wavefront nor radiation characteristics can be customized at will. More optical elements are often required to further modify the laser characteristics, making the lasing system bulky and restricted by inevitable speckle noise. Here we suggest and realize a new type of laser, a metalaser, by using the interplay between local and nonlocal responses of dielectric resonant metasurfaces. The lasing mode is confined by nonlocal interaction between meta-atoms of a planar structure and the beam wavefront is precisely shaped by locally varying dipole momenta. Consequently, the metalaser emission can directly have any desired profile, including focal spots, focal lines, vector beams, vortex beams and even holograms. Notably, the scattered waves of the metalaser do not undergo resonant amplification like laser modes, being orders of magnitude weaker. As a consequence, the speckle noise becomes negligibly small in our metalaser holograms, providing a viable solution to the speckle noise problem of conventional laser holograms. This finding enriches our understanding of lasers and promotes their performance for various optical and photonic applications.