Zhou Xin, Liu Xiaojiang, Gu Zhongze
State Key Laboratory of Digital Medical Engineering, School of Biological Science and Medical Engineering, Southeast University, Nanjing, 211189, China.
Adv Mater. 2024 Nov;36(48):e2409326. doi: 10.1002/adma.202409326. Epub 2024 Oct 13.
The advancement of electronic devices necessitates the development of three-dimensional (3D) high-precision conductive microstructures, which have extensive applications in bio-electronic interfaces, soft robots, and electronic skins. Two-photon polymerization (TPP) based 3D printing is a critical technique that offers unparalleled fabrication resolution in 3D space for intricate conductive structures. While substantial progress has been made in this field, this review summarizes recent advances in the 3D printing of conductive microstructures via TPP, mainly focusing on the essential criteria of photoresist resins suitable for TPP. Further preparation strategies of these photoresists and methods for constructing 3D conductive microstructures via TPP are discussed. The application prospects of 3D conductive microstructures in various fields are discussed, highlighting the imperative to advance their additive manufacturing technology. Finally, strategic recommendations are offered to enhance the construction of 3D conductive microstructures using TPP, addressing prevailing challenges and fostering significant advancements in manufacturing technology.
电子设备的发展需要三维(3D)高精度导电微结构的发展,这些微结构在生物电子界面、软体机器人和电子皮肤中有广泛应用。基于双光子聚合(TPP)的3D打印是一项关键技术,它在3D空间中为复杂的导电结构提供了无与伦比的制造分辨率。虽然该领域已取得重大进展,但本综述总结了通过TPP进行导电微结构3D打印的最新进展,主要关注适用于TPP的光致抗蚀剂树脂的基本标准。讨论了这些光致抗蚀剂的进一步制备策略以及通过TPP构建3D导电微结构的方法。探讨了3D导电微结构在各个领域的应用前景,强调了推进其增材制造技术的必要性。最后,提供了战略建议,以加强使用TPP构建3D导电微结构,应对当前挑战并推动制造技术取得重大进展。