Dispersion‐Enabled Symmetry Switching of Photonic Angular‐Momentum Coupling

Author:

Cai Jixiang12,Zhang Fei13,Pu Mingbo134,Chen Yan13,Guo Yinghui134,Xie Ting1,Feng Xingdong1,Jiang Baoshan5,Ma Xiaoliang14,Li Xiong14,Yu Honglin2,Luo Xiangang14ORCID

Affiliation:

1. State Key Laboratory of Optical Technologies on Nano‐Fabrication and Micro‐Engineering Institute of Optics and Electronics Chinese Academy of Sciences Chengdu 610209 China

2. Key Laboratory of Opto‐electronic Technology and Systems of the Education Ministry of China Chongqing University Chongqing 400044 China

3. Research Center on Vector Optical Fields Institute of Optics and Electronics Chinese Academy of Sciences Chengdu 610209 China

4. School of Optoelectronics University of Chinese Academy of Sciences Beijing 100049 China

5. Tianfu Xinglong Lake Laboratory Chengdu 610299 China

Abstract

AbstractPhotonic spin‐orbit interactions describe the interactions between spin angular momentum and orbital angular momentum of photons, which play essential roles in subwavelength optics. However, the influence of frequency dispersion on photonic angular‐momentum coupling is rarely studied. Here, by elaborately designing the contribution of the geometric phase and waveguide propagation phase, the dispersion‐enabled symmetry switching of photonic angular‐momentum coupling is experimentally demonstrated. This notion may induce many exotic phenomena and be found in enormous applications, such as the spin‐Hall effect, optical calculation, and wavelength division multiplexing systems. As a proof‐of‐concept demonstration, two metadevices, a multi‐channel vectorial vortex beam generator and a phase‐only hologram, are applied to experimentally display optical double convolution, which may offer additional degrees of freedom to accelerate computing and a miniaturization configuration for optical convolution without collimation operation. These results may provide a new opportunity for complex vector optical field manipulation and calculation, optical information coding, light‐matter interaction manipulation, and optical communication.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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