• Chinese Optics Letters
  • Vol. 19, Issue 6, 060011 (2021)
Bingxia Wang1、2, Shan Liu3, Tianxiang Xu1, Ruwei Zhao1, Peixiang Lu2, Wieslaw Krolikowski3、4, and Yan Sheng1、3、*
Author Affiliations
  • 1Laboratory of Infrared Materials and Devices, Research Institute of Advanced Technologies, Ningbo University, Ningbo 315211, China
  • 2Wuhan National Laboratory for Optoelectronics and School of Physics, Huazhong University of Science and Technology, Wuhan 430074, China
  • 3Laser Physics Center, Research School of Physics, Australian National University, Canberra, ACT 2601, Australia
  • 4Science Program, Texas A&M University at Qatar, Doha 23874, Qatar
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    DOI: 10.3788/COL202119.060011 Cite this Article Set citation alerts
    Bingxia Wang, Shan Liu, Tianxiang Xu, Ruwei Zhao, Peixiang Lu, Wieslaw Krolikowski, Yan Sheng. Nonlinear Talbot self-healing in periodically poled LiNbO3 crystal [Invited][J]. Chinese Optics Letters, 2021, 19(6): 060011 Copy Citation Text show less
    (a) SH diffraction from a nonlinear χ(2) grating. The grating has a periodic variation of the sign of the second-order nonlinear coefficient χ(2), which can generate SH waves with uniform amplitude but periodic phase difference of π. (b) Illustrating Talbot self-healing, where the initially missing point (#3) is restored in the first Talbot image plane.
    Fig. 1. (a) SH diffraction from a nonlinear χ(2) grating. The grating has a periodic variation of the sign of the second-order nonlinear coefficient χ(2), which can generate SH waves with uniform amplitude but periodic phase difference of π. (b) Illustrating Talbot self-healing, where the initially missing point (#3) is restored in the first Talbot image plane.
    Experimental setup for nonlinear Talbot self-healing. HW, half-wave plate; P, polarizer; L, lens; S, nonlinear photonic sample; F, short-band-pass filter; G, Glan prism; CMOS, CMOS camera.
    Fig. 2. Experimental setup for nonlinear Talbot self-healing. HW, half-wave plate; P, polarizer; L, lens; S, nonlinear photonic sample; F, short-band-pass filter; G, Glan prism; CMOS, CMOS camera.
    (a) Čerenkov SH microscopic image of the fabricated NPCs with a square lattice. Several lattice points are missing on purpose to serve as the structural defects (marked by the yellow squares). (b) The ferroelectric domain structure imaged on the output surface of the NPC. (c) The SH self-image at the first nonlinear Talbot plane. The missing lattice points are all restored, indicating the nonlinear Talbot self-healing.
    Fig. 3. (a) Čerenkov SH microscopic image of the fabricated NPCs with a square lattice. Several lattice points are missing on purpose to serve as the structural defects (marked by the yellow squares). (b) The ferroelectric domain structure imaged on the output surface of the NPC. (c) The SH self-image at the first nonlinear Talbot plane. The missing lattice points are all restored, indicating the nonlinear Talbot self-healing.
    (a) Čerenkov SH microscopic image of the hexagonally poled LiNbO3 NPCs. The designed defects are several missing lattice points located randomly throughout the sample (marked by the yellow hexagons). (b) The ferroelectric domain structure imaged on the output surface of the NPC. (c) The SH self-image at the first nonlinear Talbot plane, with the missing points being restored.
    Fig. 4. (a) Čerenkov SH microscopic image of the hexagonally poled LiNbO3 NPCs. The designed defects are several missing lattice points located randomly throughout the sample (marked by the yellow hexagons). (b) The ferroelectric domain structure imaged on the output surface of the NPC. (c) The SH self-image at the first nonlinear Talbot plane, with the missing points being restored.
    (a) Čerenkov SH microscopic image of the LiNbO3 NPC with sunflower seed pattern. (b) The ferroelectric domain structure imaged on the output surface of the crystal. (c), (d) The SH near-field diffraction patterns imaged at distances of 20 µm and 50 µm from the sunflower pattern.
    Fig. 5. (a) Čerenkov SH microscopic image of the LiNbO3 NPC with sunflower seed pattern. (b) The ferroelectric domain structure imaged on the output surface of the crystal. (c), (d) The SH near-field diffraction patterns imaged at distances of 20 µm and 50 µm from the sunflower pattern.
    Bingxia Wang, Shan Liu, Tianxiang Xu, Ruwei Zhao, Peixiang Lu, Wieslaw Krolikowski, Yan Sheng. Nonlinear Talbot self-healing in periodically poled LiNbO3 crystal [Invited][J]. Chinese Optics Letters, 2021, 19(6): 060011
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