4.8 Article

Micro/nanoscale electrohydrodynamic printing for functional metallic structures

期刊

MATERIALS TODAY NANO
卷 20, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.mtnano.2022.100254

关键词

Microscale; Nanoscale; Electrohydrodynamic printing; Functional metallic structures

资金

  1. National Natural Science Foundation of China [52125501]
  2. National Key Research and Development Program of China [2018YFA0703000]
  3. Key Research Project of Shaanxi Province [2020GXLH-Y-021, 2021GXLH-Z-028]
  4. Guangdong Basic and Applied Basic Research Foundation [2020B1515130002]
  5. Youth Innovation Team of Shaanxi Universities
  6. Fundamental Research Funds for the Central Universities

向作者/读者索取更多资源

Metallic additive manufacturing techniques have limitations in designing macro/mesoscale functional structures, while electrohydrodynamic printing technology has the potential to precisely fabricate micro/nanoscale metallic structures with revolutionary and versatile capabilities. This article reviews the latest developments and applications of metallic electrohydrodynamic printing for micro/nanoscale functional architectures. The basic principles, process parameters, and characteristics of metallic inks for micro/nanoscale electrohydrodynamic printing are analyzed. The unique capabilities of micro/nanoscale metallic electrohydrodynamic printing in fabricating minuscule 3D electronic structures, high-resolution multimaterial architectures, high-performance sensing structures, and multi-functional optoelectronic components are highlighted. Finally, the challenges and future perspectives of translating micro/nanoscale electrohydrodynamic printing into a mature AM technology for the fabrication of 3D functional metallic architectures are discussed.
Metallic additive manufacturing (AM) techniques have substantially liberated the architectural design philosophy of macro/mesoscale functional structures from ease of manufacturing to optimization of performance. However, the application of most metallic AM strategies is limited by their low adaptability and high costs in fabricating micro/nanoscale structures that are increasingly demanded in the elec-tronics field. As an emerging and promising metallic AM technology, electrohydrodynamic (EHD) printing relies on the electrostatic force to facilitate the precise deposition of ultrafine droplets or fibers derived from different metallic materials, providing a revolutionary and versatile strategy to fabricate micro/nanoscale metallic architectures. Here we focus on the state-of-the-art developments of metallic EHD printing for micro/nanoscale functional architectures as well as their potential applications. The basic principles, typical setups, working modes, and critical process parameters of micro/nanoscale metallic EHD printing are analyzed. Various metallic inks including nanoparticles and precursors for micro/nanoscale EHD printing are surveyed in terms of ink compositions, minimum feature sizes, as well as post-treatment strategies to achieve specific functionalities. More importantly, we highlight the unique capabilities of micro/nanoscale metallic EHD printing in fabricating minuscule 3D electronic structures, high-resolution multimaterial architectures, high-performance sensing structures, multi-functional optoelectronic components, etc. Finally, major challenges and future perspectives are dis-cussed to translate micro/nanoscale EHD printing into a mature AM technology for the fabrication of 3D functional metallic architectures.(c) 2022 Elsevier Ltd. All rights reserved.

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