Kim Namsoo Peter
Department of Metallurgical, Materials and Biomedical Engineering (MMBME), Center for Printable Materials Certificate (CPMC), The University of Texas at El Paso, El Paso, TX 79968, USA.
Polymers (Basel). 2020 May 27;12(6):1224. doi: 10.3390/polym12061224.
3D printable, flexible, and conductive composites are prepared by incorporating a thermoplastic elastomer and electrically conductive carbon fillers. The advantageous printability, workability, chemical resistance, electrical conductivity, and biocompatibility components allowed for an enabling of 3D-printed electronics, electromagnetic interference (EMI) shielding, static elimination, and biomedical sensors. Carbon-infused thermoplastic polyurethane (C/TPU) composites have been demonstrated to possess right-strained sensing abilities and are the candidate in fields such as smart textiles and biomedical sensing. Flexible and conductive composites were prepared by a mechanical blending of biocompatible TPU and carbons. 3D structures that exhibit mechanical flexibility and electric conductivity were successfully printed. Three different types of C/TPU composites, carbon nanotube (CNT), carbon black (CCB), and graphite (G) were prepared with differentiating sizes and composition of filaments. The conductivity of TPU/CNT and TPU/CCB composite filaments increased rapidly when the loading amount of carbon fillers exceeded the filtration threshold of 8%-10% weight. Biocompatible G did not form a conductive pathway in the TPU; resistance to indentation deformation of the TPU matrix was maintained by weight by 40%. Adding a carbon material to the TPU improved the mechanical properties of the composites, and carbon fillers could improve electrical conductivity without losing biocompatibility. For the practical use of the manufactured filaments, optimal printing parameters were determined, and an FDM printing condition was adjusted. Through this process, a variety of soft 3D-printed C/TPU structures exhibiting flexible and robust features were built and tested to investigate the performance of the possible application of 3D-printed electronics and medical scaffolds.
通过加入热塑性弹性体和导电碳填料来制备3D可打印、柔性且导电的复合材料。其具有的可打印性、可加工性、耐化学性、导电性和生物相容性等优势特性,使得3D打印电子产品、电磁干扰(EMI)屏蔽、静电消除和生物医学传感器成为可能。已证明碳注入热塑性聚氨酯(C/TPU)复合材料具有右应变传感能力,是智能纺织品和生物医学传感等领域的候选材料。通过将生物相容性TPU和碳进行机械共混制备了柔性导电复合材料。成功打印出了具有机械柔韧性和导电性的3D结构。制备了三种不同类型的C/TPU复合材料,即碳纳米管(CNT)、炭黑(CCB)和石墨(G),其长丝尺寸和组成各不相同。当碳填料的负载量超过8%-10%重量的渗滤阈值时,TPU/CNT和TPU/CCB复合长丝的电导率迅速增加。生物相容性的G在TPU中未形成导电路径;TPU基体的抗压痕变形能力按重量计保持在40%。向TPU中添加碳材料改善了复合材料的机械性能,并且碳填料可以在不损失生物相容性的情况下提高电导率。为了所制造长丝的实际应用,确定了最佳打印参数,并调整了熔融沉积成型(FDM)打印条件。通过这个过程,构建并测试了各种具有柔性和坚固特性的柔软3D打印C/TPU结构,以研究3D打印电子产品和医疗支架可能应用的性能。