TY - JOUR
T1 - On-Chip Metasurface Enabling Simultaneous Four-Dimensional Transformation of Generalized Vortex Arrays
AU - Zhao, Yidan
AU - Li, Tianhao
AU - Zhang, Xue
AU - Zhang, Shifei
AU - Cui, Yang
AU - Geng, Guangzhou
AU - Li, Junjie
AU - Wang, Yongtian
AU - Huang, Lingling
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Multi-dimensional optical field manipulation is crucial for enhancing information capacity and advancing photonic functionality. However, traditional waveguide-based photonic integrated circuits suffer from limited two-dimensional spatial scalability and insufficient degrees of freedom, hindering on-chip complex optical field generation and manipulation. Here, we propose and experimentally demonstrate a single on-chip metasurface for generating generalized vortex beam (GVB) arrays, enabling four-dimensional modulation including angular momentum, diffraction order, and incident wave vector. By integrating judiciously engineered subwavelength meta-atoms on the waveguide, we tailor the local phase gradient along the azimuthal direction and incorporate Dammann optimization to experimentally generate GVB arrays. The resulting arrays exhibit diverse orbital angular momentum distributions and distinct intensity profiles among different diffraction orders. Furthermore, by utilizing incident excitation with different wave vectors, along the x, y, and z directions, we generate multiple GVB arrays with independent intensity profiles. With its potential for miniaturized integration, this on-chip scheme further expands the control dimensions and information capacity, thus opening up new avenues for near- to far-field transformation, particle manipulation, high-speed optical communication, and next-generation integrated photonic information processing platforms.
AB - Multi-dimensional optical field manipulation is crucial for enhancing information capacity and advancing photonic functionality. However, traditional waveguide-based photonic integrated circuits suffer from limited two-dimensional spatial scalability and insufficient degrees of freedom, hindering on-chip complex optical field generation and manipulation. Here, we propose and experimentally demonstrate a single on-chip metasurface for generating generalized vortex beam (GVB) arrays, enabling four-dimensional modulation including angular momentum, diffraction order, and incident wave vector. By integrating judiciously engineered subwavelength meta-atoms on the waveguide, we tailor the local phase gradient along the azimuthal direction and incorporate Dammann optimization to experimentally generate GVB arrays. The resulting arrays exhibit diverse orbital angular momentum distributions and distinct intensity profiles among different diffraction orders. Furthermore, by utilizing incident excitation with different wave vectors, along the x, y, and z directions, we generate multiple GVB arrays with independent intensity profiles. With its potential for miniaturized integration, this on-chip scheme further expands the control dimensions and information capacity, thus opening up new avenues for near- to far-field transformation, particle manipulation, high-speed optical communication, and next-generation integrated photonic information processing platforms.
KW - dammann optimization
KW - multi-dimensional manipulation
KW - on-chip metasurface
KW - vortex array
KW - waveguide
UR - https://www.scopus.com/pages/publications/105043886462
U2 - 10.1002/adfm.76924
DO - 10.1002/adfm.76924
M3 - Article
AN - SCOPUS:105043886462
SN - 1616-301X
JO - Advanced Functional Materials
JF - Advanced Functional Materials
ER -