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基于数字全息术的超快 3D 纳米制造。

Ultrafast 3D nanofabrication via digital holography.

机构信息

Department of Mechanical and Automation Engineering, The Chinese University of Hong Kong, Shatin, Hong Kong.

Hong Kong Centre for Cerebro-Cardiovascular Health Engineering, Hong Kong Science Park, Shatin, Hong Kong.

出版信息

Nat Commun. 2023 Mar 27;14(1):1716. doi: 10.1038/s41467-023-37163-y.

Abstract

There has been a compelling demand of fabricating high-resolution complex three-dimensional (3D) structures in nanotechnology. While two-photon lithography (TPL) largely satisfies the need since its introduction, its low writing speed and high cost make it impractical for many large-scale applications. We report a digital holography-based TPL platform that realizes parallel printing with up to 2000 individually programmable laser foci to fabricate complex 3D structures with 90 nm resolution. This effectively improves the fabrication rate to 2,000,000 voxels/sec. The promising result is enabled by the polymerization kinetics under a low-repetition-rate regenerative laser amplifier, where the smallest features are defined via a single laser pulse at 1 kHz. We have fabricated large-scale metastructures and optical devices of up to centimeter-scale to validate the predicted writing speed, resolution, and cost. The results confirm our method provides an effective solution for scaling up TPL for applications beyond laboratory prototyping.

摘要

在纳米技术领域,人们对于制造高分辨率复杂三维(3D)结构的需求一直十分迫切。自问世以来,双光子光刻(TPL)在很大程度上满足了这一需求,但由于其写入速度低、成本高,在许多大规模应用中并不实用。我们报告了一种基于数字全息术的 TPL 平台,该平台可实现多达 2000 个单独可编程激光焦点的并行打印,从而以 90nm 的分辨率制造复杂的 3D 结构。这有效地将制造速度提高到 200 万体素/秒。这一有前景的结果得益于低重复率再生激光放大器下的聚合动力学,其中最小的特征是通过在 1kHz 下的单个激光脉冲定义的。我们已经制造了大规模的亚微米结构和光学器件,尺寸达到厘米级,以验证预测的写入速度、分辨率和成本。结果证实,我们的方法为 TPL 的应用提供了一种有效的解决方案,超越了实验室原型制作的范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bb8b/10043265/8e501299b477/41467_2023_37163_Fig1_HTML.jpg

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