光学学报, 2016, 36 (10): 1026001, 网络出版: 2016-10-12   

自由空间中偏振调制光场的传输及控制 下载: 3709次

Transmission and Control of Polarization Modulation Light Filed in Free Space
作者单位
西北工业大学理学院陕西省光信息技术重点实验室,教育部空间应用物理与化学重点实验室, 陕西 西安 710072
引用该论文

刘圣, 李鹏, 章毅, 韩磊, 程华超, 赵建林. 自由空间中偏振调制光场的传输及控制[J]. 光学学报, 2016, 36(10): 1026001.

Liu Sheng, Li Peng, Zhang Yi, Han Lei, Cheng Huachao, Zhao Jianlin. Transmission and Control of Polarization Modulation Light Filed in Free Space[J]. Acta Optica Sinica, 2016, 36(10): 1026001.

参考文献

[1] Allen L, Beijersbergen M W, Spreeuw R J C, et al. Orbital angular momentum of light and the transformation of Laguerre-Gaussian laser modes[J]. Phys Rev A, 1992, 45(11): 8185-8189.

[2] Grier D G. A revolution in optical manipulation[J]. Nature, 2003, 424(6950): 810-816.

[3] Siviloglou G A, Broky J, Dogariu A, et al. Observation of accelerating Airy beams[J]. Phys Rev Lett, 2007, 99(21): 213901.

[4] Siviloglou G A, Christodoulides D N. Accelerating finite energy Airy beams[J]. Opt Lett, 2007, 32(8): 979-981.

[5] Durnin J. Exact solutions for nondiffracting beams. I. The scalar theory[J]. J Opt Soc Am A, 1987, 4(4): 651-654.

[6] Durnin J, Miceli J J, Jr, Eberly J H. Diffraction-free beams[J]. Phys Rev Lett, 1987, 58(15): 1499-1501.

[7] Zhang P, Hu Y, Li T C, et al. Nonparaxial Mathieu and Weber accelerating beams[J]. Phys Rev Lett, 2012, 109(19): 193901.

[8] Chremmos I D, Chen Z G, Christodoulides D N, et al. Bessel-like optical beams with arbitrary trajectories[J]. Opt Lett, 2012, 37(23): 5003-5005.

[9] Zhao J Y, Zhang P, Deng D M, et al. Observation of self-accelerating Bessel-like optical beams along arbitrary trajectories[J]. Opt Lett, 2013, 38(4): 498-500.

[10] Jesacher A, Fürhapter S, Bernet S, et al. Shadow effects in spiral phase contrast microscopy[J]. Phys Rev Lett, 2005, 94(23): 233902.

[11] O′Neil A T, MacVicar I, Allen L, et al. Intrinsic and extrinsic nature of the orbital angular momentum of a light beam[J]. Phys Rev Lett, 2002, 88(5): 053601.

[12] Garcés-Chávez V, McGloin D, Padgett M J, et al. Observation of the transfer of the local angular momentum density of a multiringed light beam to an optically trapped particle[J]. Phys Rev Lett, 2003, 91(9): 093602.

[13] Bozinovic N, Yue Y, Ren Y X, et al. Terabit-scale orbital angular momentum mode division multiplexing in fibers[J]. Science, 2013, 340(6140): 1545-1548.

[14] Wang J, Yang J Y, Fazal I M, et al. Terabit free-space data transmission employing orbital angular momentum multiplexing[J]. Nature Photon, 2012, 6: 488-496.

[15] Zhan Q W. Cylindrical vector beams: from mathematical concepts to applications[J]. Adv Opt Photon, 2009, 1(1): 1-57.

[16] Quabis S, Dorn R, Eberler M, et al. Focusing light to a tighter spot[J]. Opt Commun, 2000, 179(1-6): 1-7.

[17] Dorn R, Quabis S, Leuchs G. Sharper focus for a radially polarized light beam[J]. Phys Rev Lett, 2003, 91(23): 233901.

[18] Wang H F, Shi L P, Lukyanchuk B, et al. Creation of a needle of longitudinally polarized light in vacuum using binary optics[J]. Nature Photon, 2008, 2: 501-505.

[19] Kozawa Y C, Sato S. Focusing property of a double-ring-shaped radially polarized beam[J]. Opt Lett, 2006, 31(6): 820-822.

[20] Zhao Y Q, Zhan Q W, Zhang Y L, et al. Creation of a three-dimensional optical chain for controllable particle delivery[J]. Opt Lett, 2005, 30(8): 848-850.

[21] Gattass R R, Mazur E. Femtosecond laser micromachining in transparent materials[J]. Nature Photon, 2008, 2: 219-225.

[22] Zhao Y Q, Edgar J S, Jeffries G D M, et al. Spin-to-orbital angular momentum conversion in a strongly focused optical beam[J]. Phys Rev Lett, 2007, 99(7): 073901.

[23] Hnatovsky C, Shvedov V, Krolikowski W, et al. Revealing local field structure of focused ultrashort pulses[J]. Phys Rev Lett, 2011, 106(12): 123901.

[24] Xie X S, Chen Y Z, Yang K, et al. Harnessing the point-spread function for high-resolution far-field optical microscopy[J]. Phys Rev Lett, 2014, 113(26): 263901.

[25] Bliokh K Y, Rodríguez-Fortuo F J, Nori F, et al. Spin-orbit interactions of light[J]. Nature Photon, 2015, 9: 796-808.

[26] Wang X L, Ding J P, Ni W J, et al. Generation of arbitrary vector beams with a spatial light modulator and a common path interferometric arrangement[J]. Opt Lett, 2007, 32(24): 3549-3551.

[27] Liu S, Li P, Peng T, et al. Generation of arbitrary spatially variant polarization beams with a trapezoid Sagnac interferometer[J]. Opt Express, 2012, 20(19): 21715-21721.

[28] Liu S, Wang M R, Li P, et al. Abrupt polarization transition of vector autofocusing Airy beams[J]. Opt Lett, 2013, 38(14): 2416-2418.

[29] Stalder M, Schadt M. Linearly polarized light with axial symmetry generated by liquid-crystal polarization converters[J]. Opt Lett, 1996, 21(23): 1948-1950.

[30] Bomzon Z, Kleiner V, Hasman E. Formation of radially and azimuthally polarized light using space-variant subwavelength metal stripe gratings[J]. Appl Phys Lett, 2001, 79(11): 1587-1589.

[31] Biener G, Niv A, Kleiner V, et al. Formation of helical beams by use of Pancharatnam-Berry phase optical elements[J]. Opt Lett, 2002, 27(21): 1875-1877.

[32] Pancharatnam S. Achromatic combinations of birefringent plates[C]. Proceedings of the Indian Academy of Sciences-Section A, 1955, 41(4): 137-144.

[33] Berry M V. The adiabatic phase and Pancharatnam′s phase for polarized light[J]. J Mod Opt, 1987, 34(11): 1401-1407.

[34] Bomzon Z, Biener G, Kleiner V, et al. Space-variant Pancharatnam-Berry phase optical elements with computer-generated subwavelength gratings[J]. Opt Lett, 2002, 27(13): 1141-1143.

[35] Yin X B, Ye Z L, Rho J, et al. Photonic spin Hall effect at metasurfaces[J]. Science, 2013, 339(6126): 1405-1407.

[36] Ling X H, Zhou X X, Yi X N, et al. Giant photonic spin Hall effect in momentum space in a structured metamaterial with spatially varying birefringence[J]. Light Sci Appl, 2015, 4: 1-6.

[37] Ke Y G, Liu Y C, He Y L, et al. Realization of spin-dependent splitting with arbitrary intensity patterns based on all-dielectric metasurfaces[J]. Appl Phys Lett, 2015, 107(4): 041107.

[38] Hasman E, Kleiner V, Biener G, et al. Polarization dependent focusing lens by use of quantized Pancharatnam-Berry phase diffractive optics[J]. Appl Phys Lett, 2003, 82(3): 328-330.

[39] Chen X Z, Huang L L, Mühlenbernd H, et al. Dual-polarity plasmonic metalens for visible light[J]. Nat Commun, 2012, 3(1198): 1-6.

[40] Liu S, Li P, Zhang Y, et al. Longitudinal spin separation of light and its performance in three-dimensionally controllable spin-dependent focal shift[J]. Sci Rep, 2016, 6: 20774.

[41] Gu B, Pan Y, Wu J L, et al. Manipulation of radial-variant polarization for creating tunable bifocusing spots[J]. J Opt Soc Am A, 2014, 31(2): 253-257.

[42] Ke Y G, Liu Y C, Zhou J X, et al. Optical integration of Pancharatnam-Berry phase lens and dynamical phase lens[J]. Appl Phys Lett, 2016, 108(10): 101102.

[43] Ke Y G, Liu Y C, Zhou J X, et al. Photonic spin filter with dielectric metasurfaces[J]. Opt Express, 2015, 23(26): 33079-33086.

[44] Wang S, Wang X K, Kan Q, et al. Spin-selected focusing and imaging based on metasurface lens[J]. Opt Express, 2015, 23(20): 26434-26441.

[45] Marrucci L, Manzo C, Paparo D. Optical spin-to-orbital angular momentum conversion in inhomogeneous anisotropic media[J]. Phys Rev Lett, 2006, 96(16): 163905.

[46] Shu W X, Ke Y G, Liu Y C, et al. Radial spin Hall effect of light[J]. Phys Rev A, 2016, 93(1): 013839.

[47] Wei B Y, Chen P, Hu W, et al. Polarization-controllable Airy beams generated via a photoaligned director-variant liquid crystal mask[J]. Sci Rep, 2015, 5: 17484.

[48] Wen D D, Yue F Y, Li G X, et al. Helicity multiplexed broadband metasurface holograms[J]. Nat Commun, 2015, 6: 8241.

[49] Wen D D, Chen S M, Yue F Y, et al. Metasurface device with helicity-dependent functionality[J]. Adv Opt Mater, 2016, 4(2): 321-327.

[50] Cardano F, Karimi E, Marrucci L, et al. Generation and dynamics of optical beams with polarization singularities[J]. Opt Express, 2013, 21(7): 8815-8820.

[51] Moreno I, Davis J A, Sánchez-López M M, et al. Nondiffracting Bessel beams with polarization state that varies with propagation distance[J]. Opt Lett, 2015, 40(23): 5451-5454.

[52] Davis J A, Moreno I, Badham K, et al. Nondiffracting vector beams where the charge and the polarization state vary with propagation distance[J]. Opt Lett, 2016, 41(10): 2270-2273.

[53] Wang X L, Lou K, Chen J, et al. Unveiling locally linearly polarized vector fields with broken axial symmetry[J]. Phys Rev A, 2011, 83(6): 063813.

[54] Li P, Liu S, Xie G F, et al. Modulation mechanism of multi-azimuthal masks on the redistributions of focused azimuthally polarized beams[J]. Opt Express, 2015, 23(6): 7131-7139.

[55] Li P, Liu S, Zhang Y, et al. Experimental realization of focal field engineering of the azimuthally polarized beams modulated by multi-azimuthal masks[J]. J Opt Soc Am B, 2015, 32(9): 1867-1872.

[56] Jiao X Y, Liu S, Wang Q, et al. Redistributing energy flow and polarization of a focused azimuthally polarized beam with rotationally symmetric sector-shaped obstacles[J]. Opt Lett, 2012, 37(6): 1041-1043.

[57] Zhang W, Liu S, Li P, et al. Controlling the polarization singularities of the focused azimuthally polarized beams[J]. Opt Express, 2013, 21(1): 974-983.

[58] Gao X Z, Pan Y, Li S M, et al. Vector optical fields broken in the spatial frequency domain[J]. Phys Rev A, 2016, 93(3): 033834.

[59] Wu G F, Wang F, Cai Y J. Generation and self-healing of a radially polarized Bessel-Gauss beam[J]. Phys Rev A, 2014, 89(4): 043807.

[60] Milione G, Dudley A, Nguyen T A, et al. Measuring the self-healing of the spatially inhomogeneous states of polarization of vector Bessel beams[J]. J Opt, 2015, 17(3): 035617.

[61] Zhang Y, Li P, Liu S, et al. Unveiling the photonic spin Hall effect of freely propagating fan-shaped cylindrical vector vortex beams[J]. Opt Lett, 2015, 40(19): 4444-4447.

[62] Ling X H, Yi X N, Zhou X X, et al. Realization of tunable spin-dependent splitting in intrinsic photonic spin Hall effect[J]. Appl Phys Lett, 2014, 105(15): 151101.

刘圣, 李鹏, 章毅, 韩磊, 程华超, 赵建林. 自由空间中偏振调制光场的传输及控制[J]. 光学学报, 2016, 36(10): 1026001. Liu Sheng, Li Peng, Zhang Yi, Han Lei, Cheng Huachao, Zhao Jianlin. Transmission and Control of Polarization Modulation Light Filed in Free Space[J]. Acta Optica Sinica, 2016, 36(10): 1026001.

本文已被 5 篇论文引用
被引统计数据来源于中国光学期刊网
引用该论文: TXT   |   EndNote

相关论文

加载中...

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!