期刊文献+

涡旋光束经过轴棱锥后的聚焦特性 被引量:4

Focusing Properties of Vortex Beam with an Axicon
原文传递
导出
摘要 研究了涡旋光束通过轴棱锥聚焦后的聚焦特性。利用惠更斯-菲涅耳衍射积分理论推导了涡旋光束经过轴棱锥聚焦后所获得的聚焦光强分布。数值模拟结果表明,涡旋光束经过轴棱锥聚焦后可获得高阶贝塞尔光束。研究了不同锥角的轴棱锥对涡旋光束聚焦特性的影响以及不同拓扑电荷数对聚焦特性的影响。结果表明,在轴棱锥对应的最大准直距离内,所获得的高阶贝塞尔光束保持了原有的无衍射特性。 Focusing properties of the vortex beams with axicon is studied.The focusing intensity distribution of vortex beams with axicon by using Huygens-Fresnel diffractive integral is investigated.Numerical calculations show that after focused by the axicon,a vortex beam can convert into a high-order Bessel beam.The influence of by different cone angles of the axicon and the different topological number of the vortex beam on the focusing properties of vortex beam is investigated.The results show that in the maximum distance of the non-diffraction zone of the axicon,the obtained high-order Bessel beam keeps the original non-diffraction properties.
出处 《激光与光电子学进展》 CSCD 北大核心 2012年第2期152-156,共5页 Laser & Optoelectronics Progress
基金 国家自然科学基金(11004138)资助课题
关键词 物理光学 涡旋光束 轴棱锥 高阶贝塞尔光束 physical optics vortex beam axicon high-order Bessel beam
  • 相关文献

参考文献14

  • 1S. A. Tatarkova, W. Sibbett, K. Dholakia. Brownian particle in an optical potential of the washboard type[J]. Phys. Rev. Lett., 2003, 91(3): 038101.
  • 2L. Paterson, M. P. Macdonald, J. Arlt et al.. Controlled rotation of optically trapped microscopic particle[J]. Science, 2001, 292(5518): 912-914.
  • 3D. G. Grier. A revolution in optical manipulation[J]. Nature, 2003, 424(6950): 810-816.
  • 4刘永欣,陈子阳,蒲继雄.涡旋光束经叉形光栅的衍射特性[J].中国激光,2011,38(3):57-63. 被引量:10
  • 5J. Arlt, K. Dholakia. Generation of high-order Bessel beams by use of an axicon[J]. Opt. Commun., 2000, 177(1-6): 297-301.
  • 6V. Garces-Chavez, D. Mcgloin, H. Melville et al.. Simultaneous micromanipulation in multiple planes using a self-reconstructing light beam[J]. Nature, 2002, 419(6903): 145-147.
  • 7J. Durnin, J. J. Miceli, Y. J. H. Eberl. Diffractive-free beams[J]. Phys. Rev. Lett., 1987, 58(15): 1499-1501.
  • 8J. Durnin, J. J. Miceli, Y. J. H. Eberl. Comparison of Bessel and Gaussian beams[J]. Opt. Lett., 1988, 13(2): 79-80.
  • 9高曾辉,吕百达.非傍轴贝塞尔-高斯光束在自由空间的传输[J].光子学报,2005,34(11):1732-1735. 被引量:8
  • 10J. Arlt, V. Garces-Chavez, W. Sibbett et al.. Optical micromanipulation using a Bessel light beam[J]. Opt. Commun., 2001, 197(4-6): 239-245.

二级参考文献21

  • 1康小平,吕百达.非傍轴平顶高斯光束M^2因子两种定义的比较研究[J].光子学报,2006,35(3):431-434. 被引量:5
  • 2Gregory Foo, David M. Palacios. Grover A. Swartzlander, Jr.. Optical vortex coronagraph [J]. Opt. Lett. , 2005, 30 (24) : 3308-3310.
  • 3Jae Hoon Lee, Gregory Foo, Ehe G. Johnson et al.. Experimental verification of an optical vortex corortagraph[J]. Phys. Rev. Lett. , 2006, 97(5): 053901.
  • 4V. Westphal, S. W. Hell. Nanoscale resolution in the focal plane of an optical microscope[J]. Phys. Rev. Left. , 2005, 94(14) : 143903.
  • 5C. S. Guo, X. Liu, J. L. Heetal.. Optimal annulus structures of optical vortices[J]. Opt. Express, 2004, 12(19) : 4625-4634.
  • 6Y. D. Liu, C. Q. Gao, X. Q. Qi et al.. Orbital angular momentum spectrum correction in free space optical communication[J]. Opt. Express, 200a, 16(10): 7091-7101.
  • 7M. W. Beijersbergen, R. P. C. Coerwinkel, M. Kristensen et al.. Helical-wave-front laser-beams produced with a spiral phase plate[J]. Opt. Commun., 1994, 112(5-6): 321-327.
  • 8R. Carmel, Z. Shachaf, M. Shulamit et al.. Adjustable spiral phase plate[J]. Appl. Opt., 2004, 43(12):2397-2399.
  • 9N. R. Heckenberg, R. Meduff, C. P. Smith et al.. Generation of optical phase singularities by computer-generated holograms [J]. Opt. Lett. , 1992, 17(3): 221-223.
  • 10J. Arlt, K. Dholakia, L. Allen et al.. The production of multiringed Laguerre-Gaussian modes by computer-generated holograms[J]. J. Mod. Opt., 1998, 45(6):1231-1237.

共引文献16

同被引文献49

  • 1Nye J F, Berry M V. Dislocations in wave trains[J] Proc. R.Soc. Lond. A. ,1974,(336) :165-190.
  • 2Mark R Dennis,Robert P King,Barry Jack,et al. Isolated optical vortex knots[J]. Nature Physics, 2010,6 (2) : 118- 121.
  • 3Verbeeck J, Tian H, Schattschneider P. Production and application of electron vortex beams[J]. Nature, 2010, 467(7313) :301-304.
  • 4Roux F S. How to distinguish between the annihilation andthe creation of optical vortices[J]. Optics Letters, 2013, 38(19) ;3895-3898.
  • 5Brijesh Kumar Singh, Monika Bahl, Dalip Singh Mehta. Study of internal energy flows in dipole vortex beams by knife edge test[J] Optics Communications, 2013, (293) : 15-21.
  • 6Curtis J E,Koss B A,D G Grier. Dynamic holographic op- tical tweezers[J]. Optics Communications, 2002, ( 207 ) : 169-175.
  • 7Liu Y J, Sun X W,Luo D, et al. Generating electricafly tunable optical vortices by a liquid crystal cell with pat- terned electrode [J]. Applied Physics Letters, 2008,92 (10) :101114.
  • 8Ostrovsky A S, Rickenstorff-Parrao C, Arriz6n V. Genera- tion of the "perfect" optical vortex using a liquid-crystal spatial light modulator[J]. Optics Letters, 2013,38 (4) : 534-536.
  • 9Yuan G,Wang Q, Yuan X. Dynamic generation of plas- monic Moir fringes using phase-engineered optical vortex beam[J]. Optics Letters, 2012,37( 13 ) : 2715-2717.
  • 10Rueda E,Munet6n D,G6mez J A. High-quality optical vor- tex-beam generation by using a multilevel vortex-produ- cing lens[J]. Optics Letters,2013,38(19) : 3941-3944.

引证文献4

二级引证文献22

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部