ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS |
Prev
Next
|
|
|
Propagation of Airy Gaussian vortex beams in uniaxial crystals |
Weihao Yu(余伟浩)1, Ruihuang Zhao(赵瑞璜)1, Fu Deng(邓富)1, Jiayao Huang(黄加耀)1, Chidao Chen(陈迟到)1, Xiangbo Yang(杨湘波)1, Yanping Zhao(赵燕平)1, Dongmei Deng(邓冬梅)1,2 |
1 Guangdong Provincial Key Laboratory of Nanophotonic Functional Materials and Devices, South China Normal University, Guangzhou 510631, China; 2 CAS Key Laboratory of Geospace Environment, University of Science and Technology of China, Chinese Academy of Sciences (CAS), Hefei 230026, China |
|
|
Abstract The propagation dynamics of the Airy Gaussian vortex beams in uniaxial crystals orthogonal to the optical axis has been investigated analytically and numerically. The propagation expression of the beams has been obtained. The propagation features of the Airy Gaussian vortex beams are shown with changes of the distribution factor and the ratio of the extraordinary refractive index to the ordinary refractive index. The correlations between the ratio and the maximum intensity value during the propagation, and its appearing distance have been investigated.
|
Received: 10 September 2015
Revised: 23 November 2015
Accepted manuscript online:
|
PACS:
|
42.25.Bs
|
(Wave propagation, transmission and absorption)
|
|
42.25.-p
|
(Wave optics)
|
|
Fund: Project supported by the National Natural Science Foundation of China (Grant Nos. 11374108, 11374107, 10904041, and 11547212), the Foundation of Cultivating Outstanding Young Scholars of Guangdong Province, China, the CAS Key Laboratory of Geospace Environment, University of Science and Technology of China, the National Training Program of Innovation and Entrepreneurship for Undergraduates (Grant No. 2015093), and the Science and Technology Projects of Guangdong Province, China (Grant No. 2013B031800011). |
Corresponding Authors:
Dongmei Deng
E-mail: dmdeng@263.net
|
Cite this article:
Weihao Yu(余伟浩), Ruihuang Zhao(赵瑞璜), Fu Deng(邓富), Jiayao Huang(黄加耀), Chidao Chen(陈迟到), Xiangbo Yang(杨湘波), Yanping Zhao(赵燕平), Dongmei Deng(邓冬梅) Propagation of Airy Gaussian vortex beams in uniaxial crystals 2016 Chin. Phys. B 25 044201
|
[1] |
Berry M V and Balazs N L 1979 Am. J. Phys. 47 264
|
[2] |
Siviloglou G A and Christodoulides D N 2007 Opt. Lett. 32 979
|
[3] |
Siviloglou G A, Broky J, Dogariu A and Christodoulides D N 2007 Phys. Rev. Lett. 99
|
[4] |
Broky J, Sivilogou G A, Dogariu A and Christodoulides D N 2008 Opt. Express 16 12880
|
[5] |
Deng D M and Guo Q 2009 New J. Phys. 11 103029
|
[6] |
Ren Z J, Ying C F, Fan C J and Wu Q 2012 Chin. Phys. Lett. 29 124209
|
[7] |
Deng D M, Du S L and Guo Q 2013 Opt. Commun. 289 6
|
[8] |
Lin H C and Pu J X 2012 Chin. Phys. B 21 054201
|
[9] |
Deng D and Li H 2012 Appl. Phys. B 106 677
|
[10] |
Zhang Y Q, Belic M R, Wu Z K, Zheng H B, Lu K Q, Li Y Y and Zhang Y P 2013 Opt. Lett. 38 4585
|
[11] |
Zhang Y Q, Belic M R, Zheng H B, Chen H X, Li C B, Li Y Y and Zhang Y P 2014 Opt. Express 22 7160
|
[12] |
Zhou G Q, Chen R P and Ru G Y 2014 Laser Phys. Lett. 11 105001
|
[13] |
Driben R, Konotop V V and Meier T 2014 Opt. Lett. 39 5523
|
[14] |
Shen M, Gao J S and Ge L J 2015 Sci. Rep. 5 9814
|
[15] |
Chen C D, Chen B, Peng X and Deng D M 2015 J. Opt. 17 035504
|
[16] |
Deng D M 2011 Eur. Phys. J. D 65 553
|
[17] |
Chong A, Renninger W H, Christodoulides D N and Wise F W 2010 Nat. Photon. 4 103
|
[18] |
Abdollahpour D, Suntsov S, Papazoglou D G and Tzortzakis S 2010 Phys. Rev. Lett. 105 253901
|
[19] |
Ren Z J, Wu Q, Zhou W D, Wu G Z and Shi Y L 2012 Acta Phys. Sin. 61 174207 (in Chinese)
|
[20] |
Christodoulides D N 2008 Nat. Photon. 2 652
|
[21] |
Baumgartl J, Mazilu M and Dholakia K 2008 Nat. Photon. 2 675
|
[22] |
Zhang P, Prakash J, Zhang Z, Mills M S, Efremidis N K, Christodoulieds D N and Chen Z G 2011 Opt. Lett. 36 2883
|
[23] |
Zhang Z, Zhang P, Mills M, Chen Z G, Christodoulides D N and Liu J J 2013 Chin. Opt. Lett. 11 033502
|
[24] |
Gu Y L and Gbur G 2010 Opt. Lett. 35 3456
|
[25] |
Yariv A and Yeh P 1984 Optical waves in crystals (New York: Wiley)
|
[26] |
Chen H C 1983 Theory of electromagnetic waves (New York: McGraw-Hill)
|
[27] |
Born M and Worf E 1999 Principles of optics, 7th edn. (Oxford: Pergamon)
|
[28] |
Zhou G Q, Chen R P and Chu X X 2012 Opt. Express 20 2196
|
[29] |
Deng D M, Chen C D, Zhao X and Li H G 2013 Appl. Phys. B-Lasers Opt. 110 433
|
[30] |
Zhou M L Chen C D, Peng X, Peng Y L and Deng D M 2014 Chin. Phys. B 24 124102
|
[31] |
Hang J Y, Liang Z J, Deng Fu, Yu W H, Zhao R H, Chen B, Yang X B and Deng D M 2015 J. Opt. Soc. Am. A 32 2104
|
[32] |
Bandres M A and Gutierrez-Vega J C 2007 Opt. Express 15 16719
|
[33] |
Chen B, Chen C D, Peng X, Peng Y L, Zhou M L and Deng D M 2015 Opt. Express 23 19288
|
[34] |
Chen B, Chen C D, Peng X and Deng D M 2015 J. Opt. Soc. Am. B 32 173
|
[35] |
Ciattoni A and Palma C 2003 J. Opt. Soc. Am. A 20 2163
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
Altmetric
|
blogs
Facebook pages
Wikipedia page
Google+ users
|
Online attention
Altmetric calculates a score based on the online attention an article receives. Each coloured thread in the circle represents a different type of online attention. The number in the centre is the Altmetric score. Social media and mainstream news media are the main sources that calculate the score. Reference managers such as Mendeley are also tracked but do not contribute to the score. Older articles often score higher because they have had more time to get noticed. To account for this, Altmetric has included the context data for other articles of a similar age.
View more on Altmetrics
|
|
|