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基于机器学习逆向设计的三维矢量全息术。

Three-dimensional vectorial holography based on machine learning inverse design.

作者信息

Ren Haoran, Shao Wei, Li Yi, Salim Flora, Gu Min

机构信息

Laboratory of Artificial-Intelligence Nanophotonics, School of Science, RMIT University, Melbourne, Victoria 3001, Australia.

Chair in Hybrid Nanosystems, Nanoinstitute Munich, Faculty of Physics, Ludwig-Maximilians-University Munich, 80539 Munich, Germany.

出版信息

Sci Adv. 2020 Apr 17;6(16):eaaz4261. doi: 10.1126/sciadv.aaz4261. eCollection 2020 Apr.

Abstract

The three-dimensional (3D) vectorial nature of electromagnetic waves of light has not only played a fundamental role in science but also driven disruptive applications in optical display, microscopy, and manipulation. However, conventional optical holography can address only the amplitude and phase information of an optical beam, leaving the 3D vectorial feature of light completely inaccessible. We demonstrate 3D vectorial holography where an arbitrary 3D vectorial field distribution on a wavefront can be precisely reconstructed using the machine learning inverse design based on multilayer perceptron artificial neural networks. This 3D vectorial holography allows the lensless reconstruction of a 3D vectorial holographic image with an ultrawide viewing angle of 94° and a high diffraction efficiency of 78%, necessary for floating displays. The results provide an artificial intelligence-enabled holographic paradigm for harnessing the vectorial nature of light, enabling new machine learning strategies for holographic 3D vectorial fields multiplexing in display and encryption.

摘要

光的电磁波的三维(3D)矢量特性不仅在科学中发挥了基础性作用,还推动了光学显示、显微镜和操控等领域的突破性应用。然而,传统光学全息术只能处理光束的振幅和相位信息,完全无法获取光的3D矢量特性。我们展示了3D矢量全息术,其中基于多层感知器人工神经网络的机器学习逆设计能够精确重建波前上任意的3D矢量场分布。这种3D矢量全息术能够以94°的超广角和78%的高衍射效率无透镜重建3D矢量全息图像,这对于浮空显示至关重要。这些结果提供了一种利用光的矢量特性的人工智能全息范例,为显示和加密中的全息3D矢量场复用带来了新的机器学习策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f34/7164942/20a4fa657284/aaz4261-F1.jpg

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