Yang Lanlan, Tu Yan, Shi Zaiyao, Guo Jingjing, Wang Lili, Zhang Yuning, Li Xiaohua, Wang Baoping
Appl Opt. 2018 Dec 10;57(35):10135-10145. doi: 10.1364/AO.57.010135.
Gratings are widely used as coupling parts in a waveguide display system for achieving a much lighter and more compact system, but their diffraction efficiency needs to be improved. Two combined gratings for integrating a subwavelength binary grating and volume holographic grating (VHG) are applied as incoupler and outcoupler of a holographic waveguide display system. Two basic design rules are put forward to guarantee the maximum diffraction energy guided into the waveguide and finally coupled out to enter into the user's eyes: one is the grating vector matching rule, the other is the refractive index matching rule on the interface of the binary grating and the VHG. The finite element method is used to simulate the couple-in parts and the whole waveguide display system. The combined grating with the metal binary grating is different from that with a dielectric binary grating for achieving higher diffraction efficiency and an additional second peak in the diffraction efficiency curve varied with the relative position between the binary grating and the VHG. The simulation results indicate that a VHG+Ag combined grating can obtain much higher diffraction efficiency compared to gold, aluminum, and other dielectric materials. In addition, several factors such as the Bragg wavelength, the index modulation of VHG, binary grating thickness, and the filling factor of the binary grating are discussed for the VHG+Ag combined grating. Moreover, a higher diffraction efficiency in the holographic waveguide system can be obtained by using VHG+Ag-VHG+Ag combined gratings as the incoupler and outcoupler.
光栅作为波导显示系统中的耦合部件被广泛应用,以实现更轻、更紧凑的系统,但其衍射效率有待提高。将一种集成亚波长二元光栅和体全息光栅(VHG)的组合光栅用作全息波导显示系统的输入耦合器和输出耦合器。提出了两条基本设计规则,以确保最大衍射能量导入波导并最终耦合输出进入用户眼睛:一条是光栅矢量匹配规则,另一条是二元光栅与VHG界面处的折射率匹配规则。采用有限元方法对输入耦合部件和整个波导显示系统进行模拟。带有金属二元光栅的组合光栅与带有介质二元光栅的组合光栅不同,它能实现更高的衍射效率,并且衍射效率曲线中会随着二元光栅与VHG之间相对位置的变化出现一个额外的第二峰值。模拟结果表明,与金、铝和其他介质材料相比,VHG+Ag组合光栅可获得更高的衍射效率。此外,针对VHG+Ag组合光栅,讨论了布拉格波长、VHG的折射率调制、二元光栅厚度和二元光栅填充因子等几个因素。此外,使用VHG+Ag-VHG+Ag组合光栅作为输入耦合器和输出耦合器,可在全息波导系统中获得更高的衍射效率。