• Infrared and Laser Engineering
  • Vol. 48, Issue 8, 817002 (2019)
Feng Xi1、2、3, Li Fuquan2, Lin Aoxiang2, Wang Fang2, Chai Xiangxu2, Zhu Qihua2, Wang Zhengping1、3, Sun Xibo2, and Sun Xun1、3
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
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    DOI: 10.3788/irla201948.0817002 Cite this Article
    Feng Xi, Li Fuquan, Lin Aoxiang, Wang Fang, Chai Xiangxu, Zhu Qihua, Wang Zhengping, Sun Xibo, Sun Xun. Polarization and intensity dependence of all-optical poling in germanosilicate glass[J]. Infrared and Laser Engineering, 2019, 48(8): 817002 Copy Citation Text show less
    References

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    [3] Gladyshev A. Second-order nonlinearity in optical fibers: achievements and perspectives[C]//Photonics and Fiber Technology 2016(ACOFT, BGPP, NP), 2016: BT5B.

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    [5] Stolen R H, Tom H W K. Self-organized phase-matched harmonic generation in optical fibers[J]. Opt Lett, 1987, 12(8): 585-587.

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    [10] Kazansky P G, Russel P S J. Thermally poled glass: frozen-in electric field or oriented dipoles[J]. Opt Commun, 1994, 110(5-6): 611-614.

    [11] Myrén N, Margulis W. Time evolution of frozen-in field during poling of fiber with alloy electrodes[J]. Opt Express, 2005, 13(9): 3438-3444.

    [12] Kashyap R, Veldhuis G J, Rogers D C, et al. Phase-matched second-harmonic generation by periodic poling of fused silica[J]. Appl Phys Lett, 1994, 64(11): 1332-1334.

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    [14] Anderson D Z, Mizrahi V, Sipe J E. Model for second-harmonic generation in glass optical fibers based on asymmetric photoelectron emission from defect sites[J]. Opt Lett, 1991, 16(11): 796-798.

    [15] Li Fuquan, Lin Aoxiang, Wang Fang, et al. Theoretical analysis of optical poling and frequency doubling effect based on classical model[C]//SPIE, 2018,12: 2317011.

    Feng Xi, Li Fuquan, Lin Aoxiang, Wang Fang, Chai Xiangxu, Zhu Qihua, Wang Zhengping, Sun Xibo, Sun Xun. Polarization and intensity dependence of all-optical poling in germanosilicate glass[J]. Infrared and Laser Engineering, 2019, 48(8): 817002
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