摘要(英) |
In this study, we discuss how to create a 360-degree viewable real achromatic image disk-type holographic stereogram.
To produce an achromatic effect, we will extend the viewing window, then the diffraction light of different wavelength will overlap and generate the achromatic image. In order to achieve that, we will use tow-step holographic process. In the first step, we will set a diffuser in the master optic system to extend the viewing window. In the second step, we will divide the master hologram into two prat which can offer red light and blue light, then reconstruct part of master hologram to reconstruct the diffraction light of different wavelength. At the same time, we can control the partial width and the exposure energy of tow part to obtain the distribution of diffraction light color.
Using the two-step holographic process, we can expend the viewing widow and create the viewing widow which can observe achromatic image successfully. And controlling the exposure energy can obtain the variety of diffraction light color. Finally, we will select a suitable light source as the reconstruction light to make the image be more ideal and achieve the achromatic image effect. |
參考文獻 |
[1]. D. Gabor, “A new microscopic principle,” Nature 161, 777 (1948).
[2]. E. N. Leith, and J. Upatnieks, “Reconstructed wavefronts and communication theory,” J. Opt. Soc. Amer. 52, 1123 (1962).
[3]. E. N. Leith, and J. Upatnieks, “Wavefront reconstruction with continuous-tone objects,” J. Opt. Soc. Amer. 53, 1377 (1963).
[4]. D. J. De Bitetto, “Bandwidth reduction of hologram transmission system by elimination of vertical parallax,” Appl. Phys. Lett. 12, 176 (1968).
[5]. S. A. Benton, “Hologram reconstruction with extended light sources,” J. Opt. Soc. Am. 59, 1545 (1969).
[6]. L. Cross, “The multiplex technique for cylindrical holographic stereograms,” Proc. SPIE’s annual meeting, San Diego, California, August (1977).
[7]. S. A. Benton, “Survey of holographic stereograms,” Proc. SPIE, 367, 15-19 (1982).
[8]. K. Okada, S. Yoshii, Y. Yamaji and J. Tsujichi, “Conical holographic stereograms,” Opt. Comm, 73, 347-350 (1989).
[9]. Y. S. Cheng, W. H. Su, and R. C. Chang, “Disk-type multiplex holography,” Appl. Opt. 38, 3093-3100 (1999).
[10]. 陳志宏,“成像面圓盤型複合全像術研究”,國立中央大學碩士論文,明國八十九年。
[11]. Y. S. Cheng, and C. H. Chen, “Image-plane disk-type multiplex hologram,” Appl. Opt. 42(35), 7013-7022 (2003).
[12]. 蘇永添,“可環繞觀賞之成像面圓盤型複合全像術”,國立中央大學,碩士論文,民國九十三年。
[13]. Y. S. Cheng, Y. T. Su, and C. H. Chen, “360-degree viewable image-plane disk-type multiplex holography by one-step recording,” Opt, Express 18(13), 14012-14023 (2010).
[14]. 林傳傑,“成像面圓盤型複合全像術之虛實像設計”,國立中央大學,碩士論文,民國九十三年。
[15]. 謝易辰,“反射式圓盤型複合全像術”,國立中央大學,碩士論文,民國九十三年。
[16]. Y. S. Cheng, C. H. Chen, and Y. C. Hsieh, “Reflection disk-type multiplex holography using two-step recording,” Jpn. J. Appl. Phys. 47(9), 7173-7181 (2008).
[17]. 簡天隆,“擴展垂直視角之反射式圓盤型複合全像術” ,國立中央大學,碩士論文,民國九十四年。
[18]. S. A. Benton, “Achromatic images from white-light transmission holograms,” J. Opt. Soc. Am. 68, 1441 (1978).
[19]. S. A. Benton, “Achromatic holographic stereograms,” J. Opt. Soc. Am. 71, 1568A (1981).
[20]. Y. S. Cheng, and R. C. Chang,“Image-plane cylindrical holographic stereogram,” Appl. Opt. 39, 4058-4069 (2000).
[21]. 張瑞城,“像平面式圓柱型複合全像術”,國立中央大學光電科學與工程學系研究所博士論文,民國八十八年。
[22]. 陳政樺,“影像黑白化之圓盤型複合全像術”,國立中央大學,碩士論文,民國一百零五年。
[23]. 郭馥萱,“影像黑白化之圓錐型複合全像術” ,國立中央大學,碩士論文,民國一百零六年。
[24]. G. Wyszecki, and W. S. Stiles, Color Science: Concepts and Method, Quantitative Data and Formulae (2nd ed.), John Wiley & Sons, New York, 1982. |