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光纤集成二氧化硅微器件的超快激光3D纳米光刻技术

Ultrafast Laser 3D Nanolithography of Fiber-Integrated Silica Microdevices.

作者信息

Zhu Dezhi, Jiang Shangben, Liao Changrui, Xu Lei, Wang Ying, Liu Dejun, Bao Weijia, Wang Famei, Huang Haoqiang, Weng Xiaoyu, Liu Liwei, Qu Junle, Wang Yiping

机构信息

Shenzhen Key Laboratory of Ultrafast Laser Micro/Nano Manufacturing, Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education/Guangdong Province, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.

Guangdong Laboratory of Artificial Intelligence and Digital Economy (SZ), Shenzhen 518060, China.

出版信息

Nano Lett. 2024 Aug 7;24(31):9734-9742. doi: 10.1021/acs.nanolett.4c02680. Epub 2024 Jul 24.

Abstract

Fiber-integrated micro/nanostructures play a crucial role in modern industry, mainly owing to their compact size, high sensitivity, and resistance to electromagnetic interference. However, the three-dimensional manufacturing of fiber-tip functional structures beyond organic polymers remains challenging. It is essential to construct fiber-integrated inorganic silica with designed functional nanostructures for microsystem applications. Here, we develop a strategy for the 3D nanolithography of fiber-integrated silica from hybrid organic-inorganic materials by ultrafast laser-induced multiphoton absorption. Without silica nanoparticles and polymer additives, the acrylate-functionalized precursors can be locally cross-linked through a nonlinear effect. Followed by annealing at low temperature, the as-printed micro/nanostructures are transformed to high-quality silica with sub-100 nm resolution. Silica microcantilever probes and microtoroid resonators are directly integrated onto the optical fiber, showing strong thermal stability and quality factors. This work provides a promising strategy for fabricating desired fiber-tip silica micro/nanostructures, which is helpful for the development of integrated functional device applications.

摘要

光纤集成微/纳米结构在现代工业中发挥着至关重要的作用,这主要归功于其紧凑的尺寸、高灵敏度以及抗电磁干扰能力。然而,除有机聚合物之外的光纤尖端功能结构的三维制造仍然具有挑战性。构建具有设计功能纳米结构的光纤集成无机二氧化硅对于微系统应用至关重要。在此,我们开发了一种通过超快激光诱导多光子吸收从有机-无机杂化材料对光纤集成二氧化硅进行三维纳米光刻的策略。无需二氧化硅纳米颗粒和聚合物添加剂,丙烯酸酯功能化前体可通过非线性效应进行局部交联。在低温退火后,打印出的微/纳米结构转变为具有亚100纳米分辨率的高质量二氧化硅。二氧化硅微悬臂梁探针和微环谐振器直接集成到光纤上,显示出强大的热稳定性和品质因数。这项工作为制造所需的光纤尖端二氧化硅微/纳米结构提供了一种有前景的策略,这有助于集成功能器件应用的发展。

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