Advanced Photonics, Volume. 5, Issue 2, 026002(2023)
Intracavity spatiotemporal metasurfaces Article Video , Author Presentation
Fig. 1. Schematic illustration of the intracavity spatiotemporal modulation using the geometric phase metasurface strongly coupled to an epsilon-near-zero material. The metasurface is incorporated in a unidirectional ring fiber laser cavity. The metasurface converts a portion of the input Gaussian beam into a vortex beam, which is coupled out from the laser cavity through a polarization beam splitter (PBS). The remaining Gaussian beam is further amplified in the following round trip. The giant nonlinear saturable absorption of the strongly coupled system further allows temporal laser pulse compression via the
Fig. 2. Intracavity spatial modulation. (a) Schematic illustration of the optical setup in free space for the vortex beam generation using the geometric phase metasurface directly from the laser cavity. Col, collimator; LP, linear polarizer; QWP, quarter-wave plate; PBS, polarization beam splitter; CCD, charge-coupled device. (b) Schematic of the unit cell of the geometric phase metasurface. (c), (d) Spatial phase distributions required for the generation of vortex beam with topological charge
Fig. 3. Intracavity temporal modulation. (a) Schematic (upper panel) and SEM image (lower panel) of the circular gold nano-antenna coupled to an ITO film. The geometric parameters are:
Fig. 4. Intracavity spatiotemporal modulation. (a), (b) Transverse mode profiles of the
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Wenhe Jia, Chenxin Gao, Yongmin Zhao, Liu Li, Shun Wen, Shuai Wang, Chengying Bao, Chunping Jiang, Changxi Yang, Yuanmu Yang, "Intracavity spatiotemporal metasurfaces," Adv. Photon. 5, 026002 (2023)
Category: Research Articles
Received: Oct. 17, 2022
Accepted: Jan. 13, 2023
Posted: Jan. 13, 2023
Published Online: Feb. 24, 2023
The Author Email: Bao Chengying (cbao@tsinghua.edu.cn), Jiang Chunping (cpjiang2008@sinano.ac.cn), Yang Yuanmu (ymyang@tsinghua.edu.cn)