TY - JOUR
T1 - Functionality multiplexing in high-efficiency metasurfaces based on coherent wave interferences
AU - Zhou, Yuejiao
AU - Liu, Tong
AU - Dai, Changhong
AU - Wang, Dongyi
AU - Zhou, Lei
N1 - This work was funded by the National Key Research and Development Program of China (Grant No. 2022YFA1404701), National Natural Science Foundation of China (Grant Nos. 12221004, 62192771) and Natural Science Foundation of Shanghai (Grant Nos. 20JC141460, 23DZ2260100).
Publisher Copyright:
© The Author(s) 2024.
PY - 2024/11
Y1 - 2024/11
N2 - Multiplexing multiple yet distinct functionalities in one single device is highly desired for modern integration optics, but conventional devices are usually of bulky sizes and/or low efficiencies. While recently proposed metasurfaces can be ul-tra-thin and highly efficient, functionalities multiplexed by metadevices so far are typically restricted to two, dictated by the number of independent polarization states of the incident light. Here, we propose a generic approach to design metade-vices exhibiting wave-control functionalities far exceeding two, based on coherent wave interferences continuously tuned by varying the incident polarization. After designing a series of building-block metaatoms with optical properties experimentally characterized, we construct two metadevices based on the proposed strategy and experimentally demonstrate their polarization-tuned multifunctionalities at the wavelength of 1550 nm. Specifically, upon continuously modulating the incident polarization along different paths on the Poincare’s sphere, we show that the first device can generate two spatially non-overlapping vortex beams with strengths continuously tuned, while the second device can generate a vectorial vortex beam carrying continuously-tuned polarization distribution and/or orbital angular momentum. Our proposed strategy significantly expands the wave-control functionalities equipped with a single optical device, which may stimulate nu-merous applications in integration optics.
AB - Multiplexing multiple yet distinct functionalities in one single device is highly desired for modern integration optics, but conventional devices are usually of bulky sizes and/or low efficiencies. While recently proposed metasurfaces can be ul-tra-thin and highly efficient, functionalities multiplexed by metadevices so far are typically restricted to two, dictated by the number of independent polarization states of the incident light. Here, we propose a generic approach to design metade-vices exhibiting wave-control functionalities far exceeding two, based on coherent wave interferences continuously tuned by varying the incident polarization. After designing a series of building-block metaatoms with optical properties experimentally characterized, we construct two metadevices based on the proposed strategy and experimentally demonstrate their polarization-tuned multifunctionalities at the wavelength of 1550 nm. Specifically, upon continuously modulating the incident polarization along different paths on the Poincare’s sphere, we show that the first device can generate two spatially non-overlapping vortex beams with strengths continuously tuned, while the second device can generate a vectorial vortex beam carrying continuously-tuned polarization distribution and/or orbital angular momentum. Our proposed strategy significantly expands the wave-control functionalities equipped with a single optical device, which may stimulate nu-merous applications in integration optics.
KW - coherent wave interferences
KW - functionality multiplexing
KW - local polarization distributions
KW - metasurface
KW - orbital angular momentum
KW - polarization-dependent
KW - vectorial vortex beam
UR - http://www.scopus.com/inward/record.url?scp=85216623959&partnerID=8YFLogxK
UR - https://www.oejournal.org//article/doi/10.29026/oea.2024.240086
U2 - 10.29026/oea.2024.240086
DO - 10.29026/oea.2024.240086
M3 - Journal article
AN - SCOPUS:85216623959
SN - 2096-4579
VL - 7
JO - Opto-Electronic Advances
JF - Opto-Electronic Advances
IS - 11
M1 - 240086
ER -