Spin and wavelength multiplexed nonlinear metasurface holography

被引:0
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作者
Weimin Ye
Franziska Zeuner
Xin Li
Bernhard Reineke
Shan He
Cheng-Wei Qiu
Juan Liu
Yongtian Wang
Shuang Zhang
Thomas Zentgraf
机构
[1] School of Physics and Astronomy,Department of Physics
[2] University of Birmingham,Department of Electrical and Computer Engineering
[3] College of Optoelectronic Science and Engineering,undefined
[4] National University of Defense Technology,undefined
[5] University of Paderborn,undefined
[6] Beijing Engineering Research Center for Mixed Reality and Novel Display Technology,undefined
[7] School of Optoelectronics,undefined
[8] Beijing Institute of Technology,undefined
[9] School of Computer Science,undefined
[10] University of Birmingham,undefined
[11] National University of Singapore,undefined
来源
Nature Communications | / 7卷
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摘要
Metasurfaces, as the ultrathin version of metamaterials, have caught growing attention due to their superior capability in controlling the phase, amplitude and polarization states of light. Among various types of metasurfaces, geometric metasurface that encodes a geometric or Pancharatnam–Berry phase into the orientation angle of the constituent meta-atoms has shown great potential in controlling light in both linear and nonlinear optical regimes. The robust and dispersionless nature of the geometric phase simplifies the wave manipulation tremendously. Benefitting from the continuous phase control, metasurface holography has exhibited advantages over conventional depth controlled holography with discretized phase levels. Here we report on spin and wavelength multiplexed nonlinear metasurface holography, which allows construction of multiple target holographic images carried independently by the fundamental and harmonic generation waves of different spins. The nonlinear holograms provide independent, nondispersive and crosstalk-free post-selective channels for holographic multiplexing and multidimensional optical data storages, anti-counterfeiting, and optical encryption.
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