电流体力学
微电子
材料科学
制作
3D打印
纳米技术
电场
纳米制造
机械工程
工程类
复合材料
物理
量子力学
医学
病理
替代医学
作者
Maxence Menétrey,Lukáš Zezulka,Pascal Fandré,Fabian Schmid,Ralph Spolenak
标识
DOI:10.1021/acsami.3c10829
摘要
Electrohydrodynamic 3D printing is an additive manufacturing technique with enormous potential in plasmonics, microelectronics, and sensing applications thanks to its broad material palette, high voxel deposition rate, and compatibility with various substrates. However, the electric field used to deposit material is concentrated at the depositing structure, resulting in the focusing of the charged droplets and geometry-dependent landing positions, which complicates the fabrication of complex 3D shapes. The low level of concordance between the design and printout seriously impedes the development of electrohydrodynamic 3D printing and rationalizes the simplicity of the designs reported so far. In this work, we break the electric field centrosymmetry to study the resulting deviation in the flight trajectory of the droplets. Comparison of experimental outcomes with predictions of an FEM model provides new insights into the droplet characteristics and unveils how the product of droplet size and charge uniquely governs its kinematics. From these insights, we develop reliable predictions of the jet trajectory and allow the computation of optimized printing paths counterbalancing the electric field distortion, thereby enabling the fabrication of geometries with unprecedented complexity.
科研通智能强力驱动
Strongly Powered by AbleSci AI