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Tytuł artykułu

Conditions for tighter focusing and higher focal depth of radially polarized vector beam

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Języki publikacji
EN
Abstrakty
EN
The radially polarized vector beam has attracted much attention recently and was also used to obtain a smaller focal spot. In this paper, highly focusing properties of radially polarized vector beam are investigated by comparing them with those of linearly polarized beam. A condition was found for tighter focusing of radially polarized vector beam. The focal spot of radially polarized vector beam is not always smaller than that of linearly polarized beam. Even if only a longitudinal field component is considered, in fact, the condition for tighter focusing of radially polarized vector beam is very complicated. Therefore, more attention should be paid to the smaller focal spot generation by means of radially polarized vector beam in practical use. In addition, the focal depth of radially polarized beam decreases on increasing numerical aperture under condition of small radius ratio, and increases on increasing radius ratio. The focal depth difference between these two kinds of beams shrinks upon increasing radius ratio and numerical aperture.
Czasopismo
Rocznik
Strony
85--101
Opis fizyczny
Bibliogr. 31 poz.
Twórcy
autor
autor
autor
autor
autor
autor
  • Electronics and Information College, Hangzhou Dianzi University, Hangzhou 310018, China
Bibliografia
  • [1] SALAMIN Y.I., Direct acceleration by two interfering radially polarized laser beams, Physics Letters A 375(3), 2011, pp. 795–799.
  • [2] YOUYI ZHUANG, YAOJU ZHANG, BIAOFENG DING, TAIKEI SUYAMA, Trapping Rayleigh particles using highly focused higher-order radially polarized beams, Optics Communications 284(7), 2011,pp. 1734–1739.
  • [3] HAYAZAWA N., SAITO Y., KAWATA S., Detection and characterization of longitudinal field for tip-enhanced Raman spectroscopy, Applied Physics Letters 85(25), 2004, pp. 6239–6241.
  • [4] TANG W.T., YEW E.Y.S., SHEPPARD C.J.R., Polarization conversion in confocal microscopy with radially polarized illumination, Optics Letters 34(14), 2009, pp. 2147–2149.
  • [5] BAOHUA JIA, HONG KANG, JIAFANG LI, MIN GU, Use of radially polarized beams in three-dimensional photonic crystal fabrication with the two-photon polymerization method, Optics Letters 34(13), 2009, pp. 1918–1920.
  • [6] KUMAR A., GUPTA M.C., Laser machining of micro-notches for fatigue life, Optics and Lasers in Engineering 48(6), 2010, pp. 690–697.
  • [7] XIANGPING LI, YAOYU CAO, MIN GU, Superresolution-focal-volume induced 3.0 Tbytes/disk capacity by focusing a radially polarized beam, Optics Letters 36(13), 2011, pp. 2510–2512.
  • [8] DORN R., QUABIS S., LEUCHS G., Sharper focus for a radially polarized light beam, Physical Review Letters 91(23), 2003, article 233901.
  • [9] BAOHUA JIA, XIAOSONG GAN, MIN GU, Direct measurement of a radially polarized focused evanescent field facilitated by a single LCD, Optics Express 13(18), 2005, pp. 6821–6827.
  • [10] XIUMIN GAO, MINGYU GAO, SONG HU, HANMING GUO, JIAN WANG, SONGLIN ZHUANG, Highly focusing of radially polarized Bessel-modulated Gaussian beam, Optica Applicata 40(4), 2010, pp. 965–974.
  • [11] XIUMIN GAO, MINGYU GAO, QIUFANG ZHAN, JINSONG LI, HANMING GUO, JIAN WANG, SONGLIN ZHUANG,Focal shift in radially polarized hollow Gaussian beam, Optik – International Journal for Light and Electron Optics 122(8), 2011, pp. 671–676.
  • [12] YOUNGWORTH K., BROWN T., Focusing of high numerical aperture cylindrical-vector beams, Optics Express 7(2), 2000, pp. 77–87.
  • [13] KOZAWA Y., SATO S., Sharper focal spot formed by higher-order radially polarized laser beams,Journal of the Optical Society of America A 24(6), 2007, pp. 1793–1798.
  • [14] RASHID M., MARAGO O.M., JONES P.H., Focusing of high-order cylindrical vector beams, Journal of Optics A: Pure and Applied Optics 11(6), 2009, article 065204.
  • [15] LERMAN G.M., LEVY U., Effect on radial polarization and apodization on spot size under tight focusing conditions, Optics Express 16(7), 2008, pp. 4567–4581.
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  • [17] OJEDA-CASTANEDA J., LANDGRAVE J.E.A., ESCAMILLA H.M., Annular phase-only mask for high focal depth, Optics Letters 30(13), 2005, pp. 1647–1649.
  • [18] MIKUŁA G., JAROSZEWICZ Z., KOLODZIEJCZYK A., PETELCZYC K., SYPEK M., Imaging with extended focal depth by means of lenses with radial and angular modulation, Optics Express 15(15), 2007,pp. 9184–9193.
  • [19] SAUCEDA A., OJEDA-CASTAÑEDA J., High focal depth with fractional-power wave fronts, Optics Letters 29(6), 2004, pp. 560–562.
  • [20] JIE LIN, KE YIN, YUDA LI, JIUBIN TAN, Achievement of longitudinally polarized focusing with long focal depth by amplitude modulation, Optics Letters 36(7), 2011, pp. 1185–1187.
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  • [24] KITAMURA K., SAKAI K., NODA S., Sub-wavelength focal spot with long depth of focus generated by radially polarized, narrow-width annular beam, Optics Express 18(5), 2010, pp. 4518–4525.
  • [25] HAIFENG WANG, FUXI GAN, High focal depth with a pure-phase apodizer, Applied Optics 40(31),2001, pp. 5658–5662.
  • [26] KOZAWA Y., SATO S., Focusing property of a double-ring-shaped radially polarized beam, Optics Letters 31(6), 2006, pp. 820–822.
  • [27] TOVAR A.A., Production and propagation of cylindrically polarized Laguerre–Gaussian laser beams, Journal of the Optical Society of America A 15(10), 1998, pp. 2705–2711.
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  • [30] XIUMIN GAO, Focusing properties of the hyperbolic-cosine-Gaussian beam induced by phase plate,Physics Letters A 360(2), 2006, pp. 330–335.
  • [31] XIUMIN GAO, JINSONG LI, Focal shift of apodized truncated hyperbolic-cosine-Gaussian beam, Optics ommunications 273(1), 2007, pp. 21–27.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPW7-0019-0088
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