Chin. Phys. Lett.  2008, Vol. 25 Issue (3): 985-988    DOI:
Original Articles |
High Efficient Tunable Fractal Axicon Based on LCoS
WANG Xin;DAI Hai-Tao;Xu Ke-Shu
State Key Lab for Advanced Photonic Materials and Devices, Department of Optical Science and Engineering, Fudan University, Shanghai 200433
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WANG Xin, DAI Hai-Tao, Xu Ke-Shu 2008 Chin. Phys. Lett. 25 985-988
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Abstract Based on the Cantor function and phase modulation, a tunable fractal axicon is formed on a liquid crystal on silicon (LCoS) with an improved generating method. It has higher focusing efficiency in higher fractal stage and approaches to 100% theoretically. The on-axis intensity keeps its fractal structure unchanged in operation of fractal stages. The tunability of the
axicon is demonstrated by tune fractal stage from 1 to 3 and focal length from 0.8m to 1m. We also provide details of theoretical analyses and experimental results.
Keywords: 42.79.Hp      42.79.Ls      42.30.Kq      42.25.Fx     
Received: 01 January 1900      Published: 27 February 2008
PACS:  42.79.Hp (Optical processors, correlators, and modulators)  
  42.79.Ls (Scanners, image intensifiers, and image converters)  
  42.30.Kq (Fourier optics)  
  42.25.Fx (Diffraction and scattering)  
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https://cpl.iphy.ac.cn/       OR      https://cpl.iphy.ac.cn/Y2008/V25/I3/0985
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WANG Xin
DAI Hai-Tao
Xu Ke-Shu
[1]Durin J, Miceli J J and Eberly J H 1987 Phys. Rev.Lett. 58 1499
[2] Davis J A, Guertin J and Cottrell D M 1993 Appl.Opt. 32 6368
[3] Monsoriu J A, Zapata-Rodriguez C J and Furlan W D 2006 Opt. Commun. 263 1
[4] Goodman J 1996 Introduction to Fourier Optics (NewYork: McGraw-Hill)
[5] Laude V 1998 Opt. Commun. 153 134
[6] Wang X, Dai H T and Xu K S 2005 Opt. Express 13 352
[7] Dai H T, Wang X and Xu K S 2005 Chin. Phys. Lett. 22 2851
[8] Moreno I, Fernandez-Pousa C, Davis J A and Franich D 2001 Opt. Engin. 40 2220
[9] Dai H T, Xu K S and Liu Y J 2004 Opt. Commun. 238 269
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