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首页> 外文期刊>Applied optics >Switchable pupil expansion propagation using orthogonal superposition varied-line-spacing H-PDLC gratings in a holographic waveguide system
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Switchable pupil expansion propagation using orthogonal superposition varied-line-spacing H-PDLC gratings in a holographic waveguide system

机译:通过正交叠加的可切换瞳孔膨胀传播,全息波导系统中的正交叠加多样线间距H-PDLC光栅

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摘要

To solve the problem of small field of view in traditional holographic waveguides, this paper proposes a waveguide-coupling technique using orthogonal superposition varied-line-spacing (VLS) gratings. These gratings expand the x and y directions and orthogonally superimpose to achieve transmission in a waveguide and enlarge the pupil field of view. At the optical coupling input end and the coupling output end of a waveguide, one-dimensional VLS gratings are used to realize horizontal expansion of the image. Then a vertical VLS grating is orthogonally superimposed at the exit end to realize vertical expansion of the image. Finally, the waveguide transmission and expansion of the image are completed. In the experiment, holographic polymer dispersed liquid crystal one-dimensional VLS gratings in the x and y directions are fabricated and coupled with a waveguide. An image source with a diameter of 0.5 cm is waveguide-transferred and coupled out, and then passed through the vertical grating. Amplification is performed to obtain an expanded image of a diameter of 2.28 cm. In this study, the diffraction characteristics of the grating used to realize pupil expansion in the holographic waveguide system are analyzed and simulated. It is calculated that the diffraction efficiency of the VLS gratings can reach 80% or more in the 532 nm band. Additionally, the characteristics of an electronically controlled switch are studied. Experimental results show that the method can be used for expanding the field of view and can be applied to waveguide systems for image transmission and expansion. (C) 2019 Optical Society of America
机译:为了解决传统全息波导中的小视野的问题,本文提出了一种使用正交叠加多样线间距(VLS)光栅的波导耦合技术。这些光栅展开X和Y方向,并正交叠加以在波导中实现变速器并扩大瞳孔视野。在波导的光耦合输入端和波导的耦合输出端,使用一维VLS光栅来实现图像的水平扩展。然后,垂直VLS光栅在出口端叠加以实现图像的垂直膨胀。最后,完成了图像的波导传输和扩展。在实验中,以X和Y方向上的全息聚合物分散液晶一维VLS在X和Y方向上进行制造并与波导耦合。具有0.5cm的直径为0.5cm的图像源被波导传递并连接出,然后通过垂直光栅。进行扩增以获得直径为2.28厘米的膨胀图像。在该研究中,分析了用于实现全息波导系统中瞳孔膨胀的光栅的衍射特性进行分析和模拟。计算出VLS光栅的衍射效率在532nm波段中可以达到80%或更多。另外,研究了电子控制开关的特性。实验结果表明,该方法可用于扩展视场,并且可以应用于用于图像传输和扩展的波导系统。 (c)2019年光学学会

著录项

  • 来源
    《Applied optics》 |2019年第24期|共7页
  • 作者单位

    Univ Shanghai Sci &

    Technol Engn Res Ctr Opt Instruments &

    Syst Shanghai Key Lab Modern Opt Syst Minist Educ Shanghai 200093 Peoples R China;

    Univ Shanghai Sci &

    Technol Engn Res Ctr Opt Instruments &

    Syst Shanghai Key Lab Modern Opt Syst Minist Educ Shanghai 200093 Peoples R China;

    Univ Shanghai Sci &

    Technol Engn Res Ctr Opt Instruments &

    Syst Shanghai Key Lab Modern Opt Syst Minist Educ Shanghai 200093 Peoples R China;

    Univ Shanghai Sci &

    Technol Engn Res Ctr Opt Instruments &

    Syst Shanghai Key Lab Modern Opt Syst Minist Educ Shanghai 200093 Peoples R China;

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  • 正文语种 eng
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