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Structured-Light 3D Imaging Based on Vector Iterative Fourier Transform Algorithm

delete2024-05-25
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OA
AI
R
Runzhe Zhang
S
Siyuan Qiao
Y
Yinghui Guo
X
Xiaoyin Li
Q
Qi Zhang
Y
Yulong Fan
Z
Zeyu Zhao
X
Xiangang Luo *
DOI:10.3390/nano14110929delete
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Abstract

Abstract

En 中文
Quasi-continuous-phase metasurfaces overcome the side effects imposed by high-order diffraction on imaging and can impart optical parameters such as amplitude, phase, polarization, and frequency to incident light at sub-wavelength scales with high efficiency. Structured-light three-dimensional (3D) imaging is a hot topic in the field of 3D imaging because of its advantages of low computation cost, high imaging accuracy, fast imaging speed, and cost-effectiveness. Structured-light 3D imaging requires uniform diffractive optical elements (DOEs), which could be realized by quasi-continuous-phase metasurfaces. In this paper, we design a quasi-continuous-phase metasurface beam splitter through a vector iterative Fourier transform algorithm and utilize this device to realize structured-light 3D imaging of a target object with subsequent target reconstruction. A structured-light 3D imaging system is then experimentally implemented by combining the fabricated quasi-continuous-phase metasurface illuminated by the vertical-cavity surface-emitting laser and a binocular recognition system, which eventually provides a new technological path for the 3D imaging field.
Keywords:
quasi-continuous-phase metasurface
diffractive optical elements
iterative Fourier transform algorithm
structured-light 3D imaging
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Journal

N
Nanomaterials
IF:
4.3
Papers:
2.2W
Citations:
8.1W

Organization

C
chinese academy of sciences
Scholars:
56.1W
Papers: 44.8W
Citations: 704