Kokkinis Dimitri, Schaffner Manuel, Studart André R
Complex Materials, Department of Materials, ETH Zürich, Zürich 8093, Switzerland.
Nat Commun. 2015 Oct 23;6:8643. doi: 10.1038/ncomms9643.
3D printing has become commonplace for the manufacturing of objects with unusual geometries. Recent developments that enabled printing of multiple materials indicate that the technology can potentially offer a much wider design space beyond unusual shaping. Here we show that a new dimension in this design space can be exploited through the control of the orientation of anisotropic particles used as building blocks during a direct ink-writing process. Particle orientation control is demonstrated by applying low magnetic fields on deposited inks pre-loaded with magnetized stiff platelets. Multimaterial dispensers and a two-component mixing unit provide additional control over the local composition of the printed material. The five-dimensional design space covered by the proposed multimaterial magnetically assisted 3D printing platform (MM-3D printing) opens the way towards the manufacturing of functional heterogeneous materials with exquisite microstructural features thus far only accessible by biological materials grown in nature.
3D打印已成为制造具有特殊几何形状物体的常见方法。最近能够打印多种材料的进展表明,该技术有可能提供比特殊形状更广阔的设计空间。在这里,我们表明,可以通过在直接墨水书写过程中控制用作构建块的各向异性颗粒的取向,来开拓这个设计空间的新维度。通过对预先装载有磁化刚性薄片的沉积墨水施加低磁场来证明颗粒取向控制。多材料分配器和双组分混合单元可对打印材料的局部成分提供额外控制。所提出的多材料磁辅助3D打印平台(MM-3D打印)所涵盖的五维设计空间,为制造具有精细微观结构特征的功能性异质材料开辟了道路,而这些微观结构特征迄今为止只有通过自然生长的生物材料才能实现。