From Single to Multi-Material 3D Printing of Glass-Ceramics for Micro-Optics

IF 9.1 2区 材料科学 Q1 CHEMISTRY, PHYSICAL Small Methods Pub Date : 2025-02-03 DOI:10.1002/smtd.202401809
Joel Arriaga-Dávila, Cristian Rosero-Arias, Dirk Jonker, Margoth Córdova-Castro, Josua Zscheile, Robert Kirchner, Alan Aguirre-Soto, Robert Boyd, Israel De Leon, Han Gardeniers, Arturo Susarrey-Arce
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Abstract

Feynman's statement, “There is plenty of room at the bottom”, underscores vast potential at the atomic scale, envisioning microscopic machines. Today, this vision extends into 3D space, where thousands of atoms and molecules are volumetrically patterned to create light-driven technologies. To fully harness their potential, 3D designs must incorporate high-refractive-index elements with exceptional mechanical and chemical resilience. The frontier, however, lies in creating spatially patterned micro-optical architectures in glass and ceramic materials of dissimilar compositions. This multi-material capability enables novel ways of shaping light, leveraging the interaction between diverse interfaced chemical compositions to push optical boundaries. Specifically, it encompasses both multi-material integration within the same architectures and the use of different materials for distinct architectural features in an optical system. Integrating fluid handling systems with two-photon lithography (TPL) provides a promising approach for rapidly prototyping such complex components. This review examines single and multi-material TPL processes, discussing photoresin customization, essential physico-chemical conditions, and the need for cross-scale characterization to assess optical quality. It reflects on challenges in characterizing multi-scale architectures and outlines advancements in TPL for both single and spatially patterned multi-material structures. The roadmap provides a bridge between research and industry, emphasizing collaboration and contributions to advancing micro-optics.

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从单材料到多材料的微光学玻璃陶瓷3D打印。
费曼的声明,“底部有足够的空间”,强调了原子尺度上的巨大潜力,设想了微观机器。今天,这一愿景扩展到3D空间,在那里成千上万的原子和分子被体积化,以创造光驱动技术。为了充分发挥其潜力,3D设计必须结合具有优异机械和化学弹性的高折射率元素。然而,前沿在于用不同成分的玻璃和陶瓷材料创造空间图案的微光学建筑。这种多材料的能力实现了塑造光的新方法,利用不同界面化学成分之间的相互作用来推动光学边界。具体来说,它既包括同一架构内的多材料集成,也包括在光学系统中使用不同的材料来实现不同的建筑特征。将流体处理系统与双光子光刻(TPL)相结合,为此类复杂部件的快速成型提供了一种很有前途的方法。本文综述了单材料和多材料TPL工艺,讨论了光树脂定制,基本的物理化学条件,以及评估光学质量的跨尺度表征的必要性。它反映了表征多尺度架构的挑战,并概述了单一和空间模式多材料结构在TPL中的进展。该路线图为研究和产业之间提供了一座桥梁,强调合作和对推进微光学的贡献。
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来源期刊
Small Methods
Small Methods Materials Science-General Materials Science
CiteScore
17.40
自引率
1.60%
发文量
347
期刊介绍: Small Methods is a multidisciplinary journal that publishes groundbreaking research on methods relevant to nano- and microscale research. It welcomes contributions from the fields of materials science, biomedical science, chemistry, and physics, showcasing the latest advancements in experimental techniques. With a notable 2022 Impact Factor of 12.4 (Journal Citation Reports, Clarivate Analytics, 2023), Small Methods is recognized for its significant impact on the scientific community. The online ISSN for Small Methods is 2366-9608.
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