Silicon-photonics-enabled chip-based 3D printer.

IF 19.4 1区 物理与天体物理 Q1 Physics and Astronomy Light, science & applications Pub Date : 2024-06-06 DOI:10.1038/s41377-024-01478-2
Sabrina Corsetti, Milica Notaros, Tal Sneh, Alex Stafford, Zachariah A Page, Jelena Notaros
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Abstract

Imagine if it were possible to create 3D objects in the palm of your hand within seconds using only a single photonic chip. Although 3D printing has revolutionized the way we create in nearly every aspect of modern society, current 3D printers rely on large and complex mechanical systems to enable layer-by-layer addition of material. This limits print speed, resolution, portability, form factor, and material complexity. Although there have been recent efforts in developing novel photocuring-based 3D printers that utilize light to transform matter from liquid resins to solid objects using advanced methods, they remain reliant on bulky and complex mechanical systems. To address these limitations, we combine the fields of silicon photonics and photochemistry to propose the first chip-based 3D printer. The proposed system consists of only a single millimeter-scale photonic chip without any moving parts that emits reconfigurable visible-light holograms up into a simple stationary resin well to enable non-mechanical 3D printing. Furthermore, we experimentally demonstrate a stereolithography-inspired proof-of-concept version of the chip-based 3D printer using a visible-light beam-steering integrated optical phased array and visible-light-curable resin, showing 3D printing using a chip-based system for the first time. This work demonstrates the first steps towards a highly-compact, portable, and low-cost solution for the next generation of 3D printers.

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基于芯片的硅光子三维打印机。
试想一下,如果只用一块光子芯片,就能在几秒钟内在手掌中制作出三维物体。尽管三维打印技术已经彻底改变了我们在现代社会几乎方方面面的创造方式,但目前的三维打印机依赖于庞大而复杂的机械系统来逐层添加材料。这限制了打印速度、分辨率、便携性、外形尺寸和材料的复杂性。虽然最近人们一直在努力开发基于光固化技术的新型三维打印机,利用先进的方法将物质从液态树脂转化为固态物体,但它们仍然依赖于庞大而复杂的机械系统。为了解决这些局限性,我们将硅光子学和光化学领域结合起来,提出了第一款基于芯片的三维打印机。所提出的系统仅由一个毫米级光子芯片组成,没有任何移动部件,可将可重新配置的可见光全息图发射到一个简单的固定树脂井中,从而实现非机械式三维打印。此外,我们还通过实验演示了基于芯片的立体光刻三维打印机的概念验证版本,该版本使用了可见光光束转向集成光学相控阵和可见光固化树脂,首次展示了使用基于芯片的系统进行三维打印。这项工作为下一代三维打印机的高紧凑、便携和低成本解决方案迈出了第一步。
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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
期刊最新文献
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