Wavefront Characteristics of a Digital Holographic Optical Element

Author:

Lee Beom-Ryeol1,Marichal-Hernández José Gil2ORCID,Rodríguez-Ramos José Manuel23,Son Wook-Ho1,Hong Sunghee4,Son Jung-Young5ORCID

Affiliation:

1. CG/Vision Section, Electronics and Telecommunications Research Institute, Daejeon 34129, Republic of Korea

2. Industrial Engineering Department, Universidad de La Laguna, 38200 La Laguna, Spain

3. Research & Development Department, Wooptix S.L., 38204 La Laguna, Spain

4. Hologram Research Center, Korea Electronics Technology Institute, Seoul 03924, Republic of Korea

5. Public Safety Research Center, Konyang University, Nonsan 32992, Republic of Korea

Abstract

In this study, a 50 × 50 mm holographic optical element (HOE) with the property of a spherical mirror was recorded digitally on a silver halide photoplate using a wavefront printing method. It consisted of 51 × 96 hologram spots with each spot measuring 0.98 × 0.52 mm. The wavefronts and optical performance of the HOE were compared with those of reconstructed images from a point hologram displayed on DMDs of different pixel structures. The same comparison was also performed with an analog-type HOE for a heads-up display and with a spherical mirror. A Shack–Hartmann wavefront sensor was used to measure the wavefronts of the diffracted beams from the digital HOE and the holograms as well as the reflected beam from the analog HOE and the mirror when a collimated beam was incident on them. These comparisons revealed that the digital HOE could perform as a spherical mirror, but they also revealed astigmatism—as in the reconstructed images from the holograms on DMDs—and that its focusability was worse than that of the analog HOE and the spherical mirror. A phase map, i.e., the polar coordinate-type presentation of the wavefront, could visualize the wavefront distortions more clearly than the reconstructed wavefronts obtained using Zernike polynomials. The phase map revealed that the wavefront of the digital HOE was more distorted than those of the analog HOE and the spherical mirror.

Funder

Institute of Information and Communications Technology Planning and Evaluation

Priority Research Centers Program through the National Research Foundation of Korea

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering

Reference18 articles.

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2. Zebra Imaging Inc., Klug, M.A., Newawanger, C., Huang, Q., and Holzbach, M. (2007). Active Digital Hologram Displays. (7,227,674), U.S. Patent.

3. Wakunami, K., Oi, R., Senoh, T., Sasaki, H., Ichihashi, Y., and Yamamoto, K. (2016). Three-Dimensional Imaging, Visualization, and Display 2016, SPIE.

4. Frieden, B.R. (1980). The Computer in Optical Research, Methods and Applications, Springer. Topics in Applied Physics.

5. Computer-Generated Holography as a Generic Display Technology;Slinger;IEEE Computer,2005

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