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用于时间可编程全息图的钙钛矿水合的飞秒激光直接纳米光刻技术。

Femtosecond laser direct nanolithography of perovskite hydration for temporally programmable holograms.

作者信息

Zhang Yinan, Zhu Shengting, Hu Jinming, Gu Min

机构信息

School of Artificial Intelligence Science and Technology, University of Shanghai for Science and Technology, Shanghai, China.

Institute of Photonic Chips, University of Shanghai for Science and Technology, Shanghai, China.

出版信息

Nat Commun. 2024 Aug 6;15(1):6661. doi: 10.1038/s41467-024-51148-5.

Abstract

Modern nanofabrication technologies have propelled significant advancement of high-resolution and optically thin holograms. However, it remains a long-standing challenge to tune the complex hologram patterns at the nanoscale for temporal light field control. Here, we report femtosecond laser direct lithography of perovskites with nanoscale feature size and pixel-level temporal dynamics control for temporally programmable holograms. Specifically, under tightly focused laser irradiation, the organic molecules of layered perovskites (PEA)PbI can be exfoliated with nanometric thickness precision and subwavelength lateral size. This creates inorganic lead halide capping nanostructures that retard perovskite hydration, enabling tunable hydration time constant. Leveraging advanced inverse design methods, temporal holograms in which multiple independent images are multiplexed with low cross talk are demonstrated. Furthermore, cascaded holograms are constructed to form temporally holographic neural networks with programmable optical inference functionality. Our work opens up new opportunities for tunable photonic devices with broad impacts on holography display and storage, high-dimensional optical encryption and artificial intelligence.

摘要

现代纳米制造技术推动了高分辨率和光学薄全息图的重大进展。然而,在纳米尺度上调整复杂的全息图图案以实现时间光场控制仍然是一个长期存在的挑战。在此,我们报道了具有纳米级特征尺寸的钙钛矿的飞秒激光直接光刻以及用于时间可编程全息图的像素级时间动态控制。具体而言,在紧聚焦激光照射下,层状钙钛矿(PEA)PbI的有机分子可以以纳米级厚度精度和亚波长横向尺寸被剥离。这产生了无机卤化铅封端纳米结构,其延缓了钙钛矿的水合作用,从而实现了可调的水合时间常数。利用先进的逆向设计方法,展示了多个独立图像以低串扰复用的时间全息图。此外,构建了级联全息图以形成具有可编程光学推理功能的时间全息神经网络。我们的工作为可调谐光子器件开辟了新机会,对全息显示与存储、高维光学加密和人工智能具有广泛影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/567a/11303552/26f345a3ccc2/41467_2024_51148_Fig1_HTML.jpg

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