• Acta Photonica Sinica
  • Vol. 50, Issue 7, 1 (2021)
Meiling ZHANG1, Peng GAO1, Kai WEN1, Kequn ZHUO1, Yang WANG1, Lixin LIU1, Junwei MIN2, and Baoli YAO2、*
Author Affiliations
  • 1School of Physics and Optoelectronic Engineering, Xidian University, Xi'an7007, China
  • 2State Key Laboratory of Transient Optics and Photonics, Xi'an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi'an710119, China
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    DOI: 10.3788/gzxb20215007.0709001 Cite this Article
    Meiling ZHANG, Peng GAO, Kai WEN, Kequn ZHUO, Yang WANG, Lixin LIU, Junwei MIN, Baoli YAO. A Comprehensive Review on Parallel Phase-shifting Digital Holography(Invited)[J]. Acta Photonica Sinica, 2021, 50(7): 1 Copy Citation Text show less

    Abstract

    Phase-shifting Digital Holography(PSDH),which combines phase-shifting technology with digital holography, provides a fast, non-invasive, and high-precision approach for the three-dimensional morphology or refractive index distribution of microscopic objects. Compared with the off-axis digital holography, the phase-shifting on-axis digital holography makes full utilization of Spatial-bandwidth Product (SBP) of the CCD camera. The conventional phase-shifting digital holography needs to records multiple phase-shifting holograms in a step-by-step manner, from which the artifact-free phase and amplitude images of a sample can be reconstructed. To enhance the imaging speed of PSDH, parallel phase-shifting technique (or simultaneous phase-shifting technique) was proposed, with which multiple phase-shifting holograms can be obtained at the same time. In this paper, the concept and implementation of phase-shifting technologies are introduced firstly. Then, three different approaches of parallel phase-shifting, which are based on multiple CCDs, pixelated phase-mask, and parallel beam-splitting, are reviewed. Eventually, the applications of parallel PSDH in the biomedical field, air/liquid flow visualization, surface topography, micro-/nano-scale device inspection are introduced.
    IN(x,y)=I0(x,y)+2AO(x,y)AR(x,y)cos[φ(x,y)-δN](1)

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    Δδ=4πdλcosα(2)

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    O(x,y)=AOexp(iφO)10R(x,y)=ARexp(iφR)01(3)

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    O'(x,y)=TQWO=-1+i2AOexp(iφO)i1R'(x,y)=TQWR=-1+i2ARexp(iφR)1i(4)

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    O''(x,y)=TPO'=22AOexpiφO-α+π4cosαsinαR''(x,y)=TPR'=22ARexpiφR+α-π4cosαsinα(5)

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    I(x,y)=(O''+R'')T(O''+R'')=12[AO2+AR2-2AOARsin(φO-φR-2α)]=12[AO2+AR2-2AOARsin(φ-2α)](6)

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    t(x)=1+mcos(2πx/d)(7)

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    Ut(x,y)=t(x)=1+m2ei2xπ/d+m2e-i2xπ/d(8)

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    Ut'(x,y)=t(x+Δx)=1+m2ei2xπ/dei2Δxπ/d+m2e-i2xπ/de-i2Δxπ/d(9)

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    Gr(ξ,η)=FT{O+R}exp(-i2πξsinα/λ)Gt(ξ,η)=FT{O+R}exp(i2πηsinβ/λ)(10)

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    Ur(x,y)=O(x+fsinα,y)+R(x+fsinα,y)Ut(x,y)=O(x-fsinβ,y)+R(x-fsinβ,y)(11)

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    φ(x,y)=arctanI0-I180I90-I270(12)

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    Meiling ZHANG, Peng GAO, Kai WEN, Kequn ZHUO, Yang WANG, Lixin LIU, Junwei MIN, Baoli YAO. A Comprehensive Review on Parallel Phase-shifting Digital Holography(Invited)[J]. Acta Photonica Sinica, 2021, 50(7): 1
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