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Keywords = ultrathin hologram

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13 pages, 4642 KB  
Article
Theoretical Zero-Thickness Broadband Holograms Based on Acoustic Sieve Metasurfaces
by Ye Tian, Shuyu Zuo, Qian Lv, Guanjun Yin and Jianzhong Guo
Appl. Sci. 2022, 12(13), 6453; https://doi.org/10.3390/app12136453 - 25 Jun 2022
Cited by 1 | Viewed by 2674
Abstract
Acoustic holography is an essential tool for controlling sound waves, generating highly complex and customizable sound fields, and enabling the visualization of sound fields. Based on acoustic sieve metasurfaces (ASMs), this paper proposes a theoretical design approach for zero-thickness broadband holograms. The ASM [...] Read more.
Acoustic holography is an essential tool for controlling sound waves, generating highly complex and customizable sound fields, and enabling the visualization of sound fields. Based on acoustic sieve metasurfaces (ASMs), this paper proposes a theoretical design approach for zero-thickness broadband holograms. The ASM is a zero-thickness rigid screen with a large number of small holes that allow sound waves to pass through and produce the desired real image in the target plane. The hole arrangement rules are determined using a genetic algorithm and the Rayleigh–Sommerfeld theory. Because the wave from a hole has no extra phase or amplitude modulation, the intractable modulation dispersion can be physically avoided, allowing the proposed ASM-based hologram to potentially function in any frequency band as long as the condition of paraxial approximation is satisfied. Using a numerical simulation based on the combination of the finite element method (FEM) and the boundary element method (BEM), this research achieves broadband holographic imaging with a good effect. The proposed theoretical zero-thickness broadband hologram may provide new possibilities for acoustic holography applications. Full article
(This article belongs to the Special Issue Recent Advance in Acoustic Metamaterials)
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11 pages, 3774 KB  
Article
Metalens Eyepiece for 3D Holographic Near-Eye Display
by Chang Wang, Zeqing Yu, Qiangbo Zhang, Yan Sun, Chenning Tao, Fei Wu and Zhenrong Zheng
Nanomaterials 2021, 11(8), 1920; https://doi.org/10.3390/nano11081920 - 26 Jul 2021
Cited by 36 | Viewed by 6967
Abstract
Near-eye display (NED) systems for virtual reality (VR) and augmented reality (AR) have been rapidly developing; however, the widespread use of VR/AR devices is hindered by the bulky refractive and diffractive elements in the complicated optical system as well as the visual discomfort [...] Read more.
Near-eye display (NED) systems for virtual reality (VR) and augmented reality (AR) have been rapidly developing; however, the widespread use of VR/AR devices is hindered by the bulky refractive and diffractive elements in the complicated optical system as well as the visual discomfort caused by excessive binocular parallax and accommodation-convergence conflict. To address these problems, an NED system combining a 5 mm diameter metalens eyepiece and a three-dimensional (3D), computer-generated holography (CGH) based on Fresnel diffraction is proposed in this paper. Metalenses have been extensively studied for their extraordinary capabilities at wavefront shaping at a subwavelength scale, their ultrathin compactness, and their significant advantages over conventional lenses. Thus, the introduction of the metalens eyepiece is likely to reduce the issue of bulkiness in NED systems. Furthermore, CGH has typically been regarded as the optimum solution for 3D displays to overcome limitations of binocular systems, since it can restore the whole light field of the target 3D scene. Experiments are carried out for this design, where a 5 mm diameter metalens eyepiece composed of silicon nitride anisotropic nanofins is fabricated with diffraction efficiency and field of view for a 532 nm incidence of 15.7% and 31°, respectively. Furthermore, a novel partitioned Fresnel diffraction and resample method is applied to simulate the wave propagations needed to produce the hologram, with the metalens capable of transforming the reconstructed 3D image into a virtual image for the NED. Our work combining metalens and CGH may pave the way for portable optical display devices in the future. Full article
(This article belongs to the Special Issue Nanophotonics and Integrated Optics Devices)
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10 pages, 5191 KB  
Article
Ultrathin Acoustic Metasurface Holograms with Arbitrary Phase Control
by Huaping Wang, Weijie Gao, Rongrong Zhu, Zehao Wang, Zhiwei Xu and Bin Zheng
Appl. Sci. 2019, 9(17), 3585; https://doi.org/10.3390/app9173585 - 2 Sep 2019
Cited by 12 | Viewed by 8420
Abstract
Holograms show great potential in optical or acoustical waves applications due to their capability to reconstruct images. In this paper, we propose a novel scheme to realize acoustic holograms based on an ultrathin metasurface with arbitrary phase control ability. Compared with the conventional [...] Read more.
Holograms show great potential in optical or acoustical waves applications due to their capability to reconstruct images. In this paper, we propose a novel scheme to realize acoustic holograms based on an ultrathin metasurface with arbitrary phase control ability. Compared with the conventional imaging method, e.g., concave mirror, which has a bulky size and limited imaging effects, the acoustic metasurface comprises a single layer of Helmholtz-like elements that can largely reduce the complexity of production. With this ultrathin reflective metasurface, acoustic holograms are constructed through a subtle structure design for single and multiple focal imaging, while the potential thermoviscous effects are minimized. We further demonstrate that the metasurface has the capability of arbitrary phase control in a certain frequency range, where the reflected phase dispersion is linear. Our proposed ultrathin metasurface holograms would be very useful in numerous applications, such as acoustic sensing, medical imaging, and so on. Full article
(This article belongs to the Special Issue Advanced Active and Passive Metasurfaces)
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