A polarization-independent and low scattering transmission grating for a distributed feedback cavity based on holographic polymer dispersed liquid crystal

被引:8
|
作者
Huang, Wenbin [1 ,2 ]
Deng, Shupeng [1 ,2 ]
Li, Wencui [1 ,2 ]
Peng, Zenghui [1 ]
Liu, Yonggang [1 ]
Hu, Lifa [1 ]
Xuan, Li [1 ]
机构
[1] Chinese Acad Sci, State Key Lab Appl Opt, Changchun Inst Opt Fine Mech & Phys, Changchun 130033, Peoples R China
[2] Chinese Acad Sci, Grad Sch, Beijing 100039, Peoples R China
关键词
holographic polymer dispersed liquid crystal; volume transmission gratings; distributed feedback laser; COUPLED-WAVE THEORY; REFLECTION GRATINGS; PHOTOPOLYMERIZATION; DIFFRACTION; MODULATORS; EMISSION; MODEL;
D O I
10.1088/2040-8978/13/8/085501
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
By using acrylate monomers and increasing the fabricating temperature to the nematic-isotropic transition point of liquid crystal, a polarization-independent holographic polymer dispersed liquid crystal (HPDLC) transmission grating is demonstrated, which is different from the conventional anisotropic grating forms at room temperature. Also, about 25% more liquid crystal is phase separated out to form the pure liquid crystal layer and the scattering loss of the Bragg diffraction grating is reduced from 8% to 4%. These results are explained by means of optical measurements. The randomly aligned liquid crystal (LC) molecules in the pure LC layer of the transmission grating bring in a much higher refractive index contrast for photons of specific frequency propagating along the grating vector, which results in a much more effective light feedback effect. Experimental results of this transmission grating as a distributed feedback laser show a lasing output with a full width at half maximum (FWHM) of about only 0.6 nm and a threshold of 6 mu J/pulse.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] Polymer dispersed liquid crystal flexible holographic curved grating
    Li Peng-fei
    Zhang Wei-Wei
    Shen Tong
    Kang Biao
    Zheng Ji-hong
    CHINESE JOURNAL OF LIQUID CRYSTALS AND DISPLAYS, 2021, 36 (02) : 237 - 245
  • [22] Kinetics investigations for holographic Bragg grating based on polymer dispersed liquid crystal
    Zheng Zhi-Gang
    Song Jing
    Zhang Ling-Li
    Liu Yong-Gang
    Guo Fu-Zhong
    Ma Ji
    Li Wen-Cui
    Deng Shu-Peng
    Xuan Li
    CHINESE PHYSICS B, 2008, 17 (09) : 3227 - 3235
  • [23] Diffraction grating in a holographic polymer dispersed liquid crystal based on polyurethane acrylate
    Kim, Eunhee
    Woo, Juyeon
    Kim, Byungkyu
    LIQUID CRYSTALS, 2007, 34 (01) : 79 - 85
  • [24] Electrically tunable holographic waveguide display based on holographic polymer dispersed liquid crystal grating
    刁志辉
    孔令胜
    闫俊良
    郭俊达
    刘小沣
    宣丽
    于磊
    Chinese Optics Letters, 2019, 17 (01) : 72 - 76
  • [25] Electrically tunable holographic waveguide display based on holographic polymer dispersed liquid crystal grating
    Diao, Zhihui
    Kong, Lingsheng
    Yan, Junliang
    Guo, Junda
    Liu, Xiaofeng
    Xuan, Li
    Yu, Lei
    CHINESE OPTICS LETTERS, 2019, 17 (01)
  • [26] Transmission holographic polymer-dispersed liquid crystal based on fluorinated polymer matrices
    Woo, Ju Yeon
    Kim, Byung Kyu
    LIQUID CRYSTALS, 2008, 35 (08) : 987 - 994
  • [27] Polarization-independent liquid-crystal grating with microscale alignment pattern
    Honma, M
    Ogasawara, M
    Nose, T
    IEICE TRANSACTIONS ON ELECTRONICS, 2005, E88C (11) : 2099 - 2105
  • [28] Holographic grating formation in PVB doped polymer dispersed liquid crystal based on PUA
    Kim, Eun-Hee
    Jung, Yeon-Gil
    Paik, Ungyu
    THIN SOLID FILMS, 2009, 518 (05) : 1424 - 1429
  • [29] Characterization of holographic polymer dispersed liquid crystal transmission gratings
    Jazbinsek, M.
    Olenik, I.D.
    Zgonik, M.
    Fontecchio, A.K.
    Crawford, G.P.
    1600, American Institute of Physics Inc. (90):
  • [30] Characterization of holographic polymer dispersed liquid crystal transmission gratings
    Jazbinsek, M
    Olenik, ID
    Zgonik, M
    Fontecchio, AK
    Crawford, GP
    JOURNAL OF APPLIED PHYSICS, 2001, 90 (08) : 3831 - 3837