• Photonics Research
  • Vol. 11, Issue 9, 1553 (2023)
Yanke Li1, Yu Zou1, Sheng Liu1、3、*, Peng Li1、2、4、*, Bingyan Wei1、5、*, and Jianlin Zhao1、2
Author Affiliations
  • 1Key Laboratory of Light Field Manipulation and Information Acquisition, Ministry of Industry and Information Technology, and Shaanxi Key Laboratory of Optical Information Technology, School of Physical Science and Technology, Northwestern Polytechnical University, Xi’an 710129, China
  • 2Collaborative Innovation Center of Light Manipulation and Applications, Shandong Normal University, Jinan 250358, China
  • 3e-mail: shengliu@nwpu.edu.cn
  • 4e-mail: pengli@nwpu.edu.cn
  • 5e-mail: wbyxz@nwpu.edu.cn
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    DOI: 10.1364/PRJ.488561 Cite this Article Set citation alerts
    Yanke Li, Yu Zou, Sheng Liu, Peng Li, Bingyan Wei, Jianlin Zhao. Linear and nonlinear photonic spin Hall effect induced by analog circular birefringence of Bessel-like beams[J]. Photonics Research, 2023, 11(9): 1553 Copy Citation Text show less
    References

    [1] S. Liu, S. Chen, S. Wen, H. Luo. Photonic spin Hall effect: fundamentals and emergent applications. Opto-Electron. Sci., 1, 220007(2022).

    [2] X. H. Ling, X. X. Zhou, K. Huang, Y. C. Liu, C. W. Qiu, H. L. Luo, S. C. Wen. Recent advances in the spin Hall effect of light. Rep. Prog. Phys., 80, 066401(2017).

    [3] M. Onoda, S. Murakami, N. Nagaosa. Hall effect of light. Phys. Rev. Lett., 93, 083901(2004).

    [4] K. Y. Bliokh, Y. P. Bliokh. Conservation of angular momentum, transverse shift, and spin Hall effect in reflection and refraction of an electromagnetic wave packet. Phys. Rev. Lett., 96, 073903(2006).

    [5] K. Y. Bliokh, C. T. Samlan, C. Prajapati, G. Puentes, N. K. Viswanathan, F. Nori. Spin-Hall effect and circular birefringence of a uniaxial crystal plate. Optica, 3, 1039-1047(2016).

    [6] K. Y. Bliokh, C. Prajapati, C. T. Samlan, N. K. Viswanathan, F. Nori. Spin-Hall effect of light at a tilted polarizer. Opt. Lett., 44, 4781-4784(2019).

    [7] A. Aiello, N. Lindlein, C. Marquardt, G. Leuchs. Transverse angular momentum and geometric spin Hall effect of light. Phys. Rev. Lett., 103, 100401(2009).

    [8] J. Korger, A. Aiello, V. Chille, P. Banzer, C. Wittmann, N. Lindlein, C. Marquardt, G. Leuchs. Observation of the geometric spin Hall effect of light. Phys. Rev. Lett., 112, 113902(2014).

    [9] A. V. Nalitov, G. Malpuech, H. Tercas, D. D. Solnyshkov. Spin-orbit coupling and the optical spin Hall effect in photonic graphene. Phys. Rev. Lett., 114, 026803(2015).

    [10] N. Shitrit, I. Bretner, Y. Gorodetski, V. Kleiner, E. Hasman. Optical spin Hall effects in plasmonic chains. Nano Lett., 11, 2038-2042(2011).

    [11] K. Y. Bliokh, Y. Gorodetski, V. Kleiner, E. Hasman. Coriolis effect in optics: unified geometric phase and spin-Hall effect. Phys. Rev. Lett., 101, 030404(2008).

    [12] Y. C. Liu, Y. G. Ke, H. L. Luo, S. C. Wen. Photonic spin Hall effect in metasurfaces: a brief review. Nanophotonics, 6, 51-70(2017).

    [13] M. Kim, D. Lee, Y. Yang, Y. Kim, J. Rho. Reaching the highest efficiency of spin Hall effect of light in the near-infrared using all-dielectric metasurfaces. Nat. Commun., 13, 2036(2022).

    [14] Z. W. Xie, T. Lei, H. D. Qiu, Z. C. Zhang, H. Wang, X. C. Yuan. Broadband on-chip photonic spin Hall element via inverse design. Photon. Res., 8, 121-126(2020).

    [15] K. Y. Bliokh, A. Niv, V. Kleiner, E. Hasman. Geometrodynamics of spinning light. Nat. Photonics, 2, 748-753(2008).

    [16] S. Pancharatnam. Generalized theory of interference and its applications. Proc. Indian Acad. Sci. A, 44, 398-417(1956).

    [17] M. V. Berry. Quantal phase-factors accompanying adiabatic changes. Proc. R. Soc. London A, 392, 45-57(1984).

    [18] S. I. Vinitskii, V. L. Derbov, V. M. Dubovik, B. L. Markovski, Y. P. Stepanovskii. Topological phases in quantum-mechanics and polarization optics. Usp. Fiz. Nauk, 160, 1-49(1990).

    [19] R. J. P. R. Bhandari. Polarization of light and topological phases. Phys. Rep., 281, 1-64(1997).

    [20] O. Hosten, P. Kwiat. Observation of the spin Hall effect of light via weak measurements. Science, 319, 787-790(2008).

    [21] Y. Zhang, P. Li, S. Liu, L. Han, H. C. Cheng, J. L. Zhao. Optimized weak measurement for spatial spin-dependent shifts at Brewster angle. Appl. Phys. B, 122, 184(2016).

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

    [23] K. Y. Bliokh, F. J. Rodriguez-Fortuno, F. Nori, A. V. Zayats. Spin–orbit interactions of light. Nat. Photonics, 9, 796-808(2015).

    [24] W. J. Luo, S. Y. Xiao, Q. He, S. L. Sun, L. Zhou. Photonic spin Hall effect with nearly 100% efficiency. Adv. Opt. Mater., 3, 1102-1108(2015).

    [25] S. Liu, P. Li, Y. Zhang, X. T. Gan, M. R. Wang, J. L. Zhao. Longitudinal spin separation of light and its performance in three-dimensionally controllable spin-dependent focal shift. Sci. Rep., 6, 20774(2016).

    [26] S. Q. Li, X. Y. Li, G. X. Wang, S. Liu, L. X. Zhang, C. Zeng, L. R. Wang, Q. B. Sun, W. Zhao, W. F. Zhang. Multidimensional manipulation of photonic spin Hall effect with a single-layer dielectric metasurface. Adv. Opt. Mater., 7, 1801365(2019).

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

    [28] Y. C. Liu, X. H. Ling, X. N. Yi, X. X. Zhou, S. Z. Chen, Y. G. Ke, H. L. Luo, S. C. Wen. Photonic spin Hall effect in dielectric metasurfaces with rotational symmetry breaking. Opt. Lett., 40, 756-759(2015).

    [29] W. X. Shu, Y. G. Ke, Y. C. Liu, X. H. Ling, H. L. Luo, X. B. Yin. Radial spin Hall effect of light. Phys. Rev. A, 93, 013839(2016).

    [30] Y. L. He, Z. Q. Xie, B. Yang, X. Y. Chen, J. M. Liu, H. P. Ye, X. X. Zhou, Y. Li, S. Q. Chen, D. Y. Fan. Controllable photonic spin Hall effect with phase function construction. Photon. Res., 8, 963-971(2020).

    [31] S. Liu, S. X. Qi, Y. K. Li, B. Y. Wei, P. Li, J. L. Zhao. Controllable oscillated spin Hall effect of Bessel beam realized by liquid crystal Pancharatnam-Berry phase elements. Light Sci. Appl., 11, 219(2022).

    [32] X. H. Ling, X. X. Zhou, X. N. Yi, W. X. Shu, Y. C. Liu, S. Z. Chen, H. L. Luo, S. C. Wen, D. Y. Fan. Giant photonic spin Hall effect in momentum space in a structured metamaterial with spatially varying birefringence. Light Sci. Appl., 4, e290(2015).

    [33] X. B. Yin, Z. L. Ye, J. Rho, Y. Wang, X. Zhang. Photonic spin Hall effect at metasurfaces. Science, 339, 1405-1407(2013).

    [34] W. G. Zhu, H. D. Zheng, Y. C. Zhong, J. H. Yu, Z. Chen. Wave-vector-varying Pancharatnam-Berry phase photonic spin Hall effect. Phys. Rev. Lett., 126, 083901(2021).

    [35] K. Lekenta, M. Krol, R. Mirek, K. Lempicka, D. Stephan, R. Mazur, P. Morawiak, P. Kula, W. Piecek, P. G. Lagoudakis, B. Pietka, J. Szczytko. Tunable optical spin hall effect in a liquid crystal microcavity. Light Sci. Appl., 7, 74(2018).

    [36] J. X. Zhou, H. L. Qian, C. F. Chen, J. X. Zhao, G. R. Li, Q. Y. Wu, H. L. Luo, S. C. Wen, Z. W. Liu. Optical edge detection based on high-efficiency dielectric metasurface. Proc. Natl. Acad. Sci. USA, 116, 11137-11140(2019).

    [37] S. S. He, J. X. Zhou, S. Z. Chen, W. X. Shu, H. L. Luo, S. C. Wen. Spatial differential operation and edge detection based on the geometric spin Hall effect of light. Opt. Lett., 45, 877-880(2020).

    [38] A. M. W. Tam, F. Fan, T. Du, W. Hu, W. L. Zhang, C. X. Zhao, X. Q. Wang, K. L. Ching, G. J. Li, H. L. Luo, V. G. Chigrinov, S. C. Wen, H. S. Kwok. Bifocal optical-vortex lens with sorting of the generated nonseparable spin-orbital angular-momentum states. Phys. Rev. Appl., 7, 034010(2017).

    [39] Y. G. Ke, Y. C. Liu, J. X. Zhou, Y. Y. Liu, H. L. Luo, S. C. Wen. Optical integration of Pancharatnam-Berry phase lens and dynamical phase lens. Appl. Phys. Lett., 108, 101102(2016).

    [40] Y. G. Ke, Y. C. Liu, J. X. Zhou, Y. Y. Liu, H. L. Luo, S. C. Wen. Photonic spin filter with dielectric metasurfaces. Opt. Express, 23, 33079-33086(2015).

    [41] S. Liu, S. X. Qi, P. Li, B. Y. Wei, P. Chen, W. Hu, Y. Zhang, X. T. Gan, P. Zhang, Y. Q. Lu, Z. G. Chen, J. L. Zhao. Analogous optical activity in free space using a single Pancharatnam–Berry phase element. Laser Photon. Rev., 16, 2100291(2022).

    [42] I. D. Chremmos, Z. G. Chen, D. N. Christodoulides, N. K. Efremidis. Bessel-like optical beams with arbitrary trajectories. Opt. Lett., 37, 5003-5005(2012).

    [43] V. Jarutis, A. Matijosius, P. Di Trapani, A. Piskarskas. Spiraling zero-order Bessel beam. Opt. Lett., 34, 2129-2131(2009).

    [44] M. Mazanov, O. Yermakov. Vortex dynamics and structured darkness of Laguerre-Gaussian beams transmitted through Q-plates under weak axial-asymmetric incidence. J. Lightwave Technol., 41, 2232-2239(2023).

    [45] M. Mazanov, O. Yermakov, A. Bogdanov, A. Lavrinenko. On anomalous optical beam shifts at near-normal incidence. APL Photon., 7, 101301(2022).

    [46] B. Y. Wei, W. Hu, Y. Ming, F. Xu, S. Rubin, J. G. Wang, V. Chigrinov, Y. Q. Lu. Generating switchable and reconfigurable optical vortices via photopatterning of liquid crystals. Adv. Mater., 26, 1590-1595(2014).

    [47] P. Chen, L. L. Ma, W. Duan, J. Chen, S. J. Ge, Z. H. Zhu, M. J. Tang, R. Xu, W. Gao, T. Li, W. Hu, Y. Q. Lu. Digitalizing self-assembled chiral superstructures for optical vortex processing. Adv. Mater., 30, 1705865(2018).

    [48] P. Chen, B. Y. Wei, W. Hu, Y. Q. Lu. Liquid-crystal-mediated geometric phase: from transmissive to broadband reflective planar optics. Adv. Mater., 32, 1903665(2020).

    [49] Y. K. Li, S. X. Qi, Y. Q. Xie, S. Liu, P. Li, B. Y. Wei, J. L. Zhao. Flexible trajectory control of Bessel beams with pure phase modulation. Opt. Express, 30, 25661-25671(2022).

    [50] A. Boniface, M. Mounaix, B. Blochet, R. Piestun, S. Gigan. Transmission-matrix-based point-spread-function engineering through a complex medium. Optica, 4, 54-59(2017).

    Yanke Li, Yu Zou, Sheng Liu, Peng Li, Bingyan Wei, Jianlin Zhao. Linear and nonlinear photonic spin Hall effect induced by analog circular birefringence of Bessel-like beams[J]. Photonics Research, 2023, 11(9): 1553
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