TY - JOUR
T1 - Frequency-Multiplexed Complex-Amplitude Meta-Devices Based on Bispectral 2-Bit Coding Meta-Atoms
AU - Xie, Rensheng
AU - Xin, Minbo
AU - Chen, Shiguo
AU - Zhang, Dajun
AU - Wang, Xiong
AU - Zhai, Guohua
AU - Gao, Jianjun
AU - An, Sensong
AU - Zheng, Bowen
AU - Zhang, Hualiang
AU - Ding, Jun
N1 - Publisher Copyright:
© 2020 Wiley-VCH GmbH
PY - 2020/12/17
Y1 - 2020/12/17
N2 - Meta-devices have attracted great interest due to the unprecedented capabilities of manipulating wavefronts. Complex-amplitude hologram can provide high-quality images that can be free of ghost images and undesired diffraction orders. However, conventional meta-holograms usually operate at a single band with phase-only modulation. Here, a reflective 2-bit meta-hologram is proposed to operate with independent complex-amplitude modulations at two frequency bands. The high-efficiency meta-atom is composed of a top perforated metallic layer, on which two C-shape split ring resonators (CSRRs) are located in the centers of a circular hole and an annular slot. By tuning the sizes of the two CSRRs, dual-band 2-bit phase modulations can be individually achieved, while the amplitude profile can be continuously tailored at each band by rotating the corresponding CSRR without affecting the phase responses. Based on this emerging meta-atom, a dual-band bifocal metalens is demonstrated numerically and a bispectral meta-hologram is validated both numerically and experimentally at two widely used communication bands. The proposed method features all desirable advantages of the coding metasurfaces with extra degrees of freedom by providing independent frequency control and amplitude modulation, which can provide great opportunities in multifunctional applications with enhanced performance and boosted information capacity.
AB - Meta-devices have attracted great interest due to the unprecedented capabilities of manipulating wavefronts. Complex-amplitude hologram can provide high-quality images that can be free of ghost images and undesired diffraction orders. However, conventional meta-holograms usually operate at a single band with phase-only modulation. Here, a reflective 2-bit meta-hologram is proposed to operate with independent complex-amplitude modulations at two frequency bands. The high-efficiency meta-atom is composed of a top perforated metallic layer, on which two C-shape split ring resonators (CSRRs) are located in the centers of a circular hole and an annular slot. By tuning the sizes of the two CSRRs, dual-band 2-bit phase modulations can be individually achieved, while the amplitude profile can be continuously tailored at each band by rotating the corresponding CSRR without affecting the phase responses. Based on this emerging meta-atom, a dual-band bifocal metalens is demonstrated numerically and a bispectral meta-hologram is validated both numerically and experimentally at two widely used communication bands. The proposed method features all desirable advantages of the coding metasurfaces with extra degrees of freedom by providing independent frequency control and amplitude modulation, which can provide great opportunities in multifunctional applications with enhanced performance and boosted information capacity.
KW - bifocal metalens
KW - complex-amplitude modulation
KW - dual-spectral meta-holograms
KW - frequency-multiplexed metasurface
UR - https://www.scopus.com/pages/publications/85093497946
U2 - 10.1002/adom.202000919
DO - 10.1002/adom.202000919
M3 - 文章
AN - SCOPUS:85093497946
SN - 2195-1071
VL - 8
JO - Advanced Optical Materials
JF - Advanced Optical Materials
IS - 24
M1 - 2000919
ER -