Liu Wing Chung, Chou Vanessa Hui Yin, Behera Rohit Pratyush, Le Ferrand Hortense
School of Mechanical and Aerospace Engineering, Nanyang Technological University, Singapore, 639798, Singapore.
School of Materials Science and Engineering, Nanyang Technological University, Singapore, 639798, Singapore.
Nat Commun. 2022 Aug 26;13(1):5015. doi: 10.1038/s41467-022-32792-1.
Microstructured composites with hierarchically arranged fillers fabricated by three-dimensional (3D) printing show enhanced properties along the fillers' alignment direction. However, it is still challenging to achieve good control of the filler arrangement and high filler concentration simultaneously, which limits the printed material's properties. In this study, we develop a magnetically assisted drop-on-demand 3D printing technique (MDOD) to print aligned microplatelet reinforced composites. By performing drop-on-demand printing using aqueous slurry inks while applying an external magnetic field, MDOD can print composites with microplatelet fillers aligned at set angles with high filler concentrations up to 50 vol%. Moreover, MDOD allows multimaterial printing with voxelated control. We showcase the capabilities of MDOD by printing multimaterial piezoresistive sensors with tunable performances based on the local microstructure and composition. MDOD thus creates a large design space to enhance the mechanical and functional properties of 3D printed electronic or sensing devices using a wide range of materials.
通过三维(3D)打印制造的具有分层排列填料的微结构复合材料在填料排列方向上显示出增强的性能。然而,同时实现对填料排列的良好控制和高填料浓度仍然具有挑战性,这限制了打印材料的性能。在本研究中,我们开发了一种磁辅助按需滴注3D打印技术(MDOD)来打印排列的微片增强复合材料。通过在施加外部磁场的同时使用水性浆料油墨进行按需滴注打印,MDOD可以打印出具有微片填料的复合材料,这些填料以设定角度排列,填料浓度高达50体积%。此外,MDOD允许进行具有体素控制的多材料打印。我们通过打印基于局部微观结构和组成的具有可调性能的多材料压阻传感器来展示MDOD的能力。因此,MDOD创造了一个很大的设计空间,以使用各种材料增强3D打印电子或传感设备的机械和功能性能。