Alioglu Mecit Altan, Yilmaz Yasar Ozer, Gerhard Ethan Michael, Pal Vaibhav, Gupta Deepak, Rizvi Syed Hasan Askari, Ozbolat Ibrahim T
The Huck Institutes of the Life Sciences, Penn State University, University Park, PA 16802, USA.
Engineering Science and Mechanics Department, Penn State University, University Park, PA 16802, USA.
Adv Mater Technol. 2024 Feb 5;9(3). doi: 10.1002/admt.202301858. Epub 2023 Dec 15.
Embedded printing has emerged as a valuable tool for fabricating complex structures and microfluidic devices. Currently, an ample of amount of research is going on to develop new materials to advance its capabilities and increase its potential applications. Here, we demonstrate a novel, transparent, printable, photocrosslinkable, and tuneable silicone composite that can be utilized as a support bath or an extrudable ink for embedded printing. Its properties can be tuned to achieve ideal rheological properties, such as optimal self-recovery and yield stress, for use in 3D printing. When used as a support bath, it facilitated the generation microfluidic devices with circular channels of diameter up to 30 μm. To demonstrate its utility, flow focusing microfluidic devices were fabricated for generation of Janus microrods, which can be easily modified for multitude of applications. When used as an extrudable ink, 3D printing of complex-shaped constructs were achieved with integrated electronics, which greatly extends its potential applications towards soft robotics. Further, its biocompatibility was tested with multiple cell types to validate its applicability for tissue engineering. Altogether, this material offers a myriad of potential applications (i.e., soft robotics, microfluidics, bioprinting) by providing a facile approach to develop complicated 3D structures and interconnected channels.
嵌入式打印已成为制造复杂结构和微流控设备的一种有价值的工具。目前,大量研究正在进行,以开发新材料来提升其性能并增加其潜在应用。在此,我们展示了一种新型的、透明的、可打印的、可光交联的且可调谐的有机硅复合材料,它可用作嵌入式打印的支撑浴或可挤出油墨。其性能可被调节以实现理想的流变性能,例如用于3D打印的最佳自我恢复和屈服应力。当用作支撑浴时,它有助于制造直径达30μm的圆形通道的微流控设备。为了展示其效用,制造了用于生成Janus微棒的流动聚焦微流控设备,其可轻松修改以用于多种应用。当用作可挤出油墨时,实现了带有集成电子器件的复杂形状结构的3D打印,这极大地扩展了其在软机器人领域的潜在应用。此外,用多种细胞类型测试了其生物相容性,以验证其在组织工程中的适用性。总之,这种材料通过提供一种开发复杂3D结构和相互连接通道的简便方法,提供了无数潜在应用(即软机器人、微流控、生物打印)。