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Abstract
With the distinct advantages of high resolution, small pixel size, and multi-level pure phase modulation, liquid crystal on silicon (LCoS) devices afford precise and reconfigurable spatial light modulation that enables versatile applications ranging from micro-displays to optical communications. However, LCoS devices suffer from a long-standing problem of polarization-dependent response in that they only perform phase modulation on one linear polarization of light, and polarization-independent phase modulation—essential for most applications—have had to use complicated polarization-diversity optics. We propose and demonstrate, for the first time, an LCoS device that directly achieves high-performance polarization-independent phase modulation at telecommunication wavelengths with 4K resolution and beyond by embedding a polarization-rotating metasurface between the LCoS backplane and the liquid crystal phase-modulating layer. We verify the device with a number of typical polarization-independent application functions including beam steering, holographical display, and in a key optical switching element - wavelength selective switch (WSS), demonstrating the significant benefits in terms of both configuration simplification and performance improvement.
We propose and demonstrate a metasurface-embedded LCoS device that achieves polarization-independent phase modulation at telecommunication wavelengths with 4K resolution and beyond.
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Details
; Wen, Yuanhui 2 ; Li, Jiaqi 1 ; Chen, Yujie 1
; Peng, Zenghui 3 ; Li, Jianxiong 2 ; Zhu, Lei 2 ; Wu, Yunfei 2 ; Zhou, Lidan 1 ; Liu, Lin 1 ; Zong, Liangjia 2 ; Yu, Siyuan 1 1 Sun Yat-sen University, State Key Laboratory of Optoelectronic Materials and Technologies, School of Electronics and Information Technology, Guangzhou, China (GRID:grid.12981.33) (ISNI:0000 0001 2360 039X)
2 Huawei Technologies Co., Ltd., Bantian, Shenzhen, China (GRID:grid.453400.6) (ISNI:0000 0000 8743 5787)
3 Chinese Academy of Sciences, State Key Laboratory of Applied Optics, Changchun Institute of Optics, Fine Mechanics and Physics, Changchun, China (GRID:grid.9227.e) (ISNI:0000000119573309)




