{"id":1124842,"date":"2024-05-13T12:35:57","date_gmt":"2024-05-13T16:35:57","guid":{"rendered":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/uncategorized\/full-colour-3d-holographic-augmented-reality-displays-with-metasurface-waveguides-nature-com\/"},"modified":"2024-05-13T12:35:57","modified_gmt":"2024-05-13T16:35:57","slug":"full-colour-3d-holographic-augmented-reality-displays-with-metasurface-waveguides-nature-com","status":"publish","type":"post","link":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/virtual-reality\/full-colour-3d-holographic-augmented-reality-displays-with-metasurface-waveguides-nature-com\/","title":{"rendered":"Full-colour 3D holographic augmented-reality displays with metasurface waveguides &#8211; Nature.com"},"content":{"rendered":"<p><p>        Azuma, R. T. A survey of augmented reality. Presence:        Teleoperators Virtual Environ. 6, 355385        (1997).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Xiong, J., Hsiang, E.-L., He, Z., Zhan, T. & Wu, S.-T.        Augmented reality and virtual reality displays: emerging        technologies and future perspectives. Light: Sci.        Appl. 10, 216 (2021).      <\/p>\n<p>        Article        ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Chang, C., Bang, K., Wetzstein, G., Lee, B. & Gao, L.        Toward the next-generation VR\/AR optics: a review of        holographic near-eye displays from a human-centric        perspective. Optica 7, 15631578 (2020).      <\/p>\n<p>        Article ADS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Kooi, F. L. & Toet, A. Visual comfort of binocular and 3D        displays. Displays 25, 99108 (2004).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Shibata, T., Kim, J., Hoffman, D. M. & Banks, M. S. The        zone of comfort: predicting visual discomfort with stereo        displays. J. Vis. 11, 11 (2011).      <\/p>\n<p>        Article PubMed                Google Scholar      <\/p>\n<p>        Cakmakci, O. & Rolland, J. Head-worn displays: a review.        J. Disp. Technol. 2, 199216 (2006).      <\/p>\n<p>        Article ADS         Google Scholar      <\/p>\n<p>        Kress, B. C. & Chatterjee, I. Waveguide combiners for mixed        reality headsets: a nanophotonics design perspective.        Nanophotonics 10, 4174 (2021).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Gabor, D. A new microscopic principle. Nature        161, 777778 (1949).      <\/p>\n<p>        Article ADS         Google Scholar      <\/p>\n<p>        Sutherland, I. E. The ultimate display. In Proc. of the        IFIP Congress (ed. Kalenich, W. A.) 2, 506508        (Spartan, 1965).      <\/p>\n<p>        Tay, S. et al. An updatable holographic three-dimensional        display. Nature 451, 694698 (2008).      <\/p>\n<p>        Article ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Blanche, P.-A. et al. Holographic three-dimensional        telepresence using large-area photorefractive polymer.        Nature 468, 8083 (2010).      <\/p>\n<p>        Article ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Smalley, D. E., Smithwick, Q., Bove, V., Barabas, J. &        Jolly, S. Anisotropic leaky-mode modulator for holographic        video displays. Nature 498, 313317 (2013).      <\/p>\n<p>        Article ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Maimone, A., Georgiou, A. & Kollin, J. S. Holographic        near-eye displays for virtual and augmented reality. ACM        Trans. Graph. 36, 85 (2017).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Molesky, S. et al. Inverse design in nanophotonics. Nat.        Photon.12, 659670 (2018).      <\/p>\n<p>        Article        ADS CAS         Google Scholar      <\/p>\n<p>        Li, Z., Pestourie, R., Lin, Z., Johnson, S. G. & Capasso,        F. Empowering metasurfaces with inverse design: principles        and applications. ACS Photonics 9, 21782192        (2022).      <\/p>\n<p>        Article        CAS         Google Scholar      <\/p>\n<p>        Jiang, J., Chen, M. & Fan, J. A. Deep neural networks for        the evaluation and design of photonic devices. Nat. Rev.        Mater. 6, 679700 (2021).      <\/p>\n<p>        Article        ADS         Google Scholar      <\/p>\n<p>        Genevet, P., Capasso, F., Aieta, F., Khorasaninejad, M. &        Devlin, R. Recent advances in planar optics: from plasmonic        to dielectric metasurfaces. Optica 4, 139152        (2017).      <\/p>\n<p>        Article ADS CAS         Google Scholar      <\/p>\n<p>        Lee, G.-Y., Sung, J. & Lee, B. Metasurface optics for        imaging applications. MRS Bull. 45, 202209        (2020).      <\/p>\n<p>        Article ADS         Google Scholar      <\/p>\n<p>        Lin, D. et al. Optical metasurfaces for high angle steering        at visible wavelengths. Sci. Rep.7,        2286 (2017).      <\/p>\n<p>        Article        ADS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Song, J.-H., van de Groep, J., Kim, S. J. & Brongersma, M.        L. Non-local metasurfaces for spectrally decoupled        wavefront manipulation and eye tracking. Nat.        Nanotechnol. 16, 12241230 (2021).      <\/p>\n<p>        Article        ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Lawrence, M. et al. High quality factor phase gradient        metasurfaces. Nat. Nanotechnol. 15, 956961        (2020).      <\/p>\n<p>        Article        ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Cordaro, A. et al. Solving integral equations in free space        with inverse-designed ultrathin optical metagratings.        Nat. Nanotechnol. 18, 365372 (2023).      <\/p>\n<p>        Lee, G.-Y. et al. Metasurface eyepiece for augmented        reality. Nat. Commun. 9, 4562 (2018).      <\/p>\n<p>        Joo, W.-J. & Brongersma, M. L. Creating the ultimate        virtual reality display. Science 377,        13761378 (2022).      <\/p>\n<p>        Article ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Kim, J. et al. Holographic glasses for virtual reality. In        ACM SIGGRAPH 2022 Conference Proc. (eds Nandigjav,        M. et al.) 33 (ACM, 2022).      <\/p>\n<p>        Peng, Y., Choi, S., Padmanaban, N. & Wetzstein, G. Neural        holography with camera-in-the-loop training. ACM Trans.        Graph. 39, 185 (2020).      <\/p>\n<p>        Article CAS         Google Scholar      <\/p>\n<p>        Shi, L., Li, B., Kim, C., Kellnhofer, P. & Matusik, W.        Towards real-time photorealistic 3D holography with deep        neural networks. Nature 591, 234239 (2021).      <\/p>\n<p>        Article        ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Peng, Y., Choi, S., Kim, J. & Wetzstein, G. Speckle-free        holography with partially coherent light sources and        camera-in-the-loop calibration. Sci. Adv. 7,        eabg5040 (2021).      <\/p>\n<p>        Shi, L., Li, B. & Matusik, W. End-to-end learning of 3D        phase-only holograms for holographic display. Light Sci.        Appl. 11, 247 (2022).      <\/p>\n<p>        Yeom, H.-J. et al. 3d holographic head mounted display        using holographic optical elements with astigmatism        aberration compensation. Opt, Express 23,        3202532034 (2015).      <\/p>\n<p>        Article ADS PubMed                Google Scholar      <\/p>\n<p>        Jeong, J. et al. Holographically customized optical        combiner for eye-box extended near-eye display. Opt.        Express 27, 3800638018 (2019).      <\/p>\n<p>        Article ADS PubMed                Google Scholar      <\/p>\n<p>        Yeom, J., Son, Y. & Choi, K. Crosstalk reduction in voxels        for a see-through holographic waveguide by using integral        imaging with compensated elemental images. Photonics        8, 217 (2021).      <\/p>\n<p>        Choi, M.-H., Shin, K.-S., Jang, J., Han, W. & Park, J.-H.        Waveguide-type Maxwellian near-eye display using a        pin-mirror holographic optical element array. Opt.        Lett. 47, 405408 (2022).      <\/p>\n<p>        Article ADS PubMed                Google Scholar      <\/p>\n<p>        Chen, W. T. et al. A broadband achromatic metalens for        focusing and imaging in the visible. Nat.        Nanotechnol. 13, 220226 (2018).      <\/p>\n<p>        Article        ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Li, Z. et al. Meta-optics achieves RGB-achromatic focusing        for virtual reality. Sci. Adv. 7, eabe4458        (2021).      <\/p>\n<p>        Article ADS CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Kim, C. & Lee, B. Torcwa: GPU-accelerated Fourier modal        method and gradient-based optimization for metasurface        design. Comput. Phys. Comm. 282, 108552        (2023).      <\/p>\n<p>        Article        CAS         Google Scholar      <\/p>\n<p>        Kingma, D. P. & Ba, J. Adam: A method for stochastic        optimization. In Proceedings of the 3rd International        Conference on Learning Representations (2015).      <\/p>\n<p>        Park, J.-S. et al. All-glass, large metalens at visible        wavelength using deep-ultraviolet projection lithography.        Nano Lett. 19, 86738682 (2019).      <\/p>\n<p>        Article        ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Kim, J. et al. Scalable manufacturing of high-index atomic        layerpolymer hybrid metasurfaces for metaphotonics in the        visible. Nat. Mater. 22, 474481 (2023).      <\/p>\n<p>        Article        ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Chakravarthula, P., Tseng, E., Srivastava, T., Fuchs, H. &        Heide, F. Learned hardware-in-the-loop phase retrieval for        holographic near-eye displays. ACM Trans. Graph.        39, 186 (2020).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Choi, S., Gopakumar, M., Peng, Y., Kim, J. & Wetzstein, G.        Neural 3D holography: learning accurate wave propagation        models for 3D holographic virtual and augmented reality        displays. ACM Trans. Graph. 40, 240 (2021).      <\/p>\n<p>        Choi, S. et al. Time-multiplexed neural holography: a        flexible framework for holographic near-eye displays with        fast heavily-quantized spatial light modulators. In ACM        SIGGRAPH 2022 Conference Proc. (eds Nandigjav, M. et        al.) 32 (2022).      <\/p>\n<p>        Jang, C., Bang, K., Chae, M., Lee, B. & Lanman, D.        Waveguide holography for 3D augmented reality glasses.        Nat. Commun. 15, 66 (2024).      <\/p>\n<p>        Hwang, C.-S. et al. 21-2: Invited paper: 1m pixel pitch        spatial light modulator panel for digital holography.        Dig. Tech. Pap. SID Int. Symp. 51, 297300        (2020).      <\/p>\n<p>        Article CAS         Google Scholar      <\/p>\n<p>        Park, J., Lee, K. & Park, Y. Ultrathin wide-angle        large-area digital 3D holographic display using a        non-periodic photon sieve. Nat. Commun. 10,        1304 (2019).      <\/p>\n<p>        Article        ADS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Kuo, G., Waller, L., Ng, R. & Maimone, A. High resolution        tendue expansion for holographic displays. ACM Trans.        Graph. 39, 66 (2020).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Jang, C., Bang, K., Li, G. & Lee, B. Holographic near-eye        display with expanded eye-box. ACM Trans. Graph.        37, 195 (2018).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Horisaki, R., Takagi, R. & Tanida, J.        Deep-learning-generated holography. Appl. Optics        57, 38593863 (2018).      <\/p>\n<p>        Article ADS         Google Scholar      <\/p>\n<p>        Kim, C., Zimmer, H., Pritch, Y., Sorkine-Hornung, A. &        Gross, M. Scene reconstruction from high spatio-angular        resolution light fields. ACM Trans. Graph.        32, 73 (2013).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Ronneberger, O., Fischer, P. & Brox, T. U-net:        convolutional networks for biomedical image segmentation.        In Medical Image Computing and Computer-Assisted        Intervention  MICCAI 2015 (eds Navab, N., Hornegger,        J., Wells, W. & Frangi, A.) 234241 (Springer, 2015).      <\/p>\n<p>        Ulyanov, D., Vedaldi, A. & Lempitsky, V. Improved texture        networks: maximizing quality and diversity in feed-forward        stylization and texture synthesis. In Proceedings of the        IEEE Conference on Computer Vision and Pattern        Recognition 69246932 (2017).      <\/p>\n<p><!-- Auto Generated --><\/p>\n<p>Excerpt from:<\/p>\n<p><a target=\"_blank\" rel=\"nofollow noopener\" href=\"https:\/\/www.nature.com\/articles\/s41586-024-07386-0\" title=\"Full-colour 3D holographic augmented-reality displays with metasurface waveguides - Nature.com\">Full-colour 3D holographic augmented-reality displays with metasurface waveguides - Nature.com<\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p> Azuma, R. T.  <a href=\"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/virtual-reality\/full-colour-3d-holographic-augmented-reality-displays-with-metasurface-waveguides-nature-com\/\">Continue reading <span class=\"meta-nav\">&rarr;<\/span><\/a><\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[187744],"tags":[],"class_list":["post-1124842","post","type-post","status-publish","format-standard","hentry","category-virtual-reality"],"_links":{"self":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/posts\/1124842"}],"collection":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/comments?post=1124842"}],"version-history":[{"count":0,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/posts\/1124842\/revisions"}],"wp:attachment":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/media?parent=1124842"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/categories?post=1124842"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/tags?post=1124842"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}