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According to the phase and amplitude modulation of the spatial light modulator (SLM) loading the phase distribution for generating arbitrary vector beams, we present a method of generating arbitrary vector beams based on the optical holography with angle multiplexing. First of all, we use the optical holography to record the special phase distribution on the SLM, and so an optical holographic grating is obtained. In the reproduction process, the two conjugate reference beams with the same incident angle illuminate the holographic grating and the superposition of the two reproduced beams is achieved, thus the arbitrary vector beams are obtained. This method can avoid the emergence of complex polarization distribution, and has advantages such as simple optical setup, convenient operation, and higher polarization purity of generated arbitrary vector beams. Good results of the arbitrary vector beams are also obtained by computer simulation.
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Keywords:
- holographic /
- spatial light modulator /
- angle multiplexing /
- arbitrary vector beam
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[2] Liu T, Tan J, Liu J 2013 Opt. Commun. 294 21
[3] Song W T, Lin F, Fang Z Y, Zhu X 2010 Acta Phys. Sin. 59 6921 (in Chinese) [宋文涛, 林峰, 方哲宇, 朱星 2010 59 6921]
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[7] Zhan Q W 2009 Adv. Opt. Photon. 1 1
[8] Lu F, Huang Z 2009 Opt. Lett. 34 1870
[9] Chiou P Y, Ohta A T, Wu M C 2005 Nature 436 370
[10] Qi J L, Li X J, Wang W H, Wang X F, Sun W C 2013 Appl. Opt. 52 8369
[11] Guo C S, Rong Z Y, Wang S Z 2014 Opt. Lett. 39 386
[12] Liu S, Li P, Peng T, Zhao J L 2012 Opt. Express 20 21715
[13] Han W, Yang Y F, Cheng W, Zhan Q W 2013 Opt. Express 21 20692
[14] Chen H, Hao J J, Zhang B F, Xu J, Ding J P, Wang H T 2011 Opt. Lett. 15 3179
[15] Wang X L, Wang H T 2007 Opt. Lett. 32 3549
[16] Li Y G, Wang X L, Zhao H, Wang H T 2012 Opt. Lett. 37 1790
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[1] Pohl D 1972 Appl. Phys. Lett. 20 266
[2] Liu T, Tan J, Liu J 2013 Opt. Commun. 294 21
[3] Song W T, Lin F, Fang Z Y, Zhu X 2010 Acta Phys. Sin. 59 6921 (in Chinese) [宋文涛, 林峰, 方哲宇, 朱星 2010 59 6921]
[4] Donato M G, Vasi S, Sayed R, Jones P H, Bonaccorso F, Ferrari A C, Gucciardi P G, Maragò O M 2012 Opt. Lett. 37 3381
[5] Wang W T, Hu B, Wang M W 2013 Acta Phys. Sin. 62 060601 (in Chinese) [王文亭, 胡冰, 王明伟 2013 62 060601]
[6] Pu J X, Wang T, Lin H C, Li C L 2010 Chin. Phys. B 19 089201
[7] Zhan Q W 2009 Adv. Opt. Photon. 1 1
[8] Lu F, Huang Z 2009 Opt. Lett. 34 1870
[9] Chiou P Y, Ohta A T, Wu M C 2005 Nature 436 370
[10] Qi J L, Li X J, Wang W H, Wang X F, Sun W C 2013 Appl. Opt. 52 8369
[11] Guo C S, Rong Z Y, Wang S Z 2014 Opt. Lett. 39 386
[12] Liu S, Li P, Peng T, Zhao J L 2012 Opt. Express 20 21715
[13] Han W, Yang Y F, Cheng W, Zhan Q W 2013 Opt. Express 21 20692
[14] Chen H, Hao J J, Zhang B F, Xu J, Ding J P, Wang H T 2011 Opt. Lett. 15 3179
[15] Wang X L, Wang H T 2007 Opt. Lett. 32 3549
[16] Li Y G, Wang X L, Zhao H, Wang H T 2012 Opt. Lett. 37 1790
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