Cazin Ines, Rossegger Elisabeth, Roppolo Ignazio, Sangermano Marco, Granitzer Petra, Rumpf Klemens, Schlögl Sandra
Polymer Competence Center Leoben GmbH Roseggerstrasse 12 A-8700 Leoben Austria
Department of Applied Science and Technology, Politecnico di Torino, Duca degli Abruzzi, 24 10124 Torino Italy.
RSC Adv. 2023 Jun 9;13(26):17536-17544. doi: 10.1039/d3ra02504g.
Additive manufacturing is one of the most promising processing techniques for fabricating customized 3D objects. For the 3D printing of functional and stimuli-triggered devices, interest is steadily growing in processing materials with magnetic properties. Synthesis routes for magneto-responsive soft materials typically involve the dispersion of (nano)particles into a non-magnetic polymer matrix. Above their glass transition temperature, the shape of such composites can be conveniently adjusted by applying an external magnetic field. With their rapid response time, facile controllability, and reversible actuation, magnetically responsive soft materials can be used in the biomedical field ( drug delivery, minimally invasive surgery), soft robotics or in electronic applications. Herein, we combine the magnetic response with thermo-activated healability by introducing magnetic FeO nanoparticles into a dynamic photopolymer network, which undergoes thermo-activated bond exchange reactions. The resin is based on a radically curable thiol-acrylate system, whose composition is optimized towards processability digital light processing 3D printing. A mono-functional methacrylate phosphate is applied as a stabilizer to increase the resins' shelf life by preventing thiol-Michael reactions. Once photocured, the organic phosphate further acts as a transesterification catalyst and activates bond exchange reactions at elevated temperature, which render the magneto-active composites mendable and malleable. The healing performance is demonstrated by recovering magnetic and mechanical properties after the thermally triggered mending of 3D-printed structures. We further demonstrate the magnetically driven movement of 3D-printed samples, which gives rise to the potential use of these materials in healable soft devices activated by external magnetic fields.
增材制造是制造定制3D物体最有前途的加工技术之一。对于功能性和刺激触发装置的3D打印,人们对加工具有磁性的材料的兴趣正在稳步增长。磁响应软材料的合成路线通常涉及将(纳米)颗粒分散到非磁性聚合物基质中。在其玻璃化转变温度以上,可以通过施加外部磁场方便地调整此类复合材料的形状。由于其快速的响应时间、易于控制和可逆驱动,磁响应软材料可用于生物医学领域(药物递送、微创手术)、软机器人或电子应用。在此,我们通过将磁性FeO纳米颗粒引入动态光聚合物网络中,将磁响应与热激活可愈合性相结合,该网络会发生热激活键交换反应。该树脂基于一种可自由基固化的硫醇-丙烯酸酯体系,其组成针对数字光处理3D打印的加工性能进行了优化。一种单官能甲基丙烯酸酯磷酸盐用作稳定剂,通过防止硫醇-迈克尔反应来延长树脂的保质期。一旦光固化,有机磷酸盐进一步充当酯交换催化剂,并在高温下激活键交换反应,使磁活性复合材料具有可修复性和可塑性。通过对3D打印结构进行热触发修复后恢复磁性和机械性能,证明了其愈合性能。我们进一步展示了3D打印样品的磁驱动运动,这使得这些材料在由外部磁场激活的可愈合软装置中具有潜在的应用价值。