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3D Printed Electrically-Driven Soft Actuators.3D打印电动软致动器
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Bio-ink for on-demand printing of living cells.用于按需打印活细胞的生物墨水。
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Patient-specific design of a soft occluder for the left atrial appendage.针对左心耳的个体化设计软体封堵器。
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3D Printing of Liquid Crystal Elastomeric Actuators with Spatially Programed Nematic Order.3D 打印具有空间可编程向列序的液晶弹性体致动器。
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3D Printing by Multiphase Silicone/Water Capillary Inks.多相硅酮/水毛细管墨水的 3D 打印。
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3D-Printed Transparent Glass.3D 打印透明玻璃。
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Direct 4D printing via active composite materials.直接通过活性复合原料进行 4D 打印。
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3D Printing of Emulsions and Foams into Hierarchical Porous Ceramics.乳液和泡沫的 3D 打印制备分级多孔陶瓷。
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具有可调机械性能的聚四氟乙烯(PTFE)的直接墨水书写

Direct Ink Writing of Poly(tetrafluoroethylene) (PTFE) with Tunable Mechanical Properties.

作者信息

Jiang Zhuoran, Erol Ozan, Chatterjee Devina, Xu Weinan, Hibino Narutoshi, Romer Lewis H, Kang Sung Hoon, Gracias David H

出版信息

ACS Appl Mater Interfaces. 2019 Aug 7;11(31):28289-28295. doi: 10.1021/acsami.9b07279. Epub 2019 Jul 23.

DOI:10.1021/acsami.9b07279
PMID:31291075
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6813788/
Abstract

Poly(tetrafluoroethylene) (PTFE) is a unique polymer with highly desirable properties such as resistance to chemical degradation, biocompatibility, hydrophobicity, antistiction, and low friction coefficient. However, due to its high melt viscosity, it is not possible to three-dimensional (3D)-print PTFE structures using nozzle-based extrusion. Here, we report a new and versatile strategy for 3D-printing PTFE structures using direct ink writing (DIW). Our approach is based on a newly formulated PTFE nanoparticle ink and thermal treatment process. The ink was formulated by mixing an aqueous dispersion of surfactant-stabilized PTFE nanoparticles with a binding gum to optimize its shear-thinning properties required for DIW. We developed a multistage thermal treatment to fuse the PTFE nanoparticles, solidify the printed structures, and remove the additives. We have extensively characterized the rheological and mechanical properties and processing parameters of these structures using imaging, mechanical testing, and statistical design of experiments. Importantly, several of the mechanical and structural properties of the final-printed PTFE structures resemble that of compression-molded PTFE, and additionally, the mechanical properties are tunable. We anticipate that this versatile approach facilitates the production of 3D-printed PTFE components using DIW with significant potential applications in engineering and medicine.

摘要

聚四氟乙烯(PTFE)是一种具有高度理想特性的独特聚合物,如耐化学降解性、生物相容性、疏水性、抗粘连性和低摩擦系数。然而,由于其高熔体粘度,无法使用基于喷嘴的挤出法对PTFE结构进行三维(3D)打印。在此,我们报告了一种使用直接墨水书写(DIW)3D打印PTFE结构的新型通用策略。我们的方法基于一种新配制的PTFE纳米颗粒墨水和热处理工艺。该墨水是通过将表面活性剂稳定的PTFE纳米颗粒的水分散体与一种粘结胶混合来配制的,以优化DIW所需的剪切变稀特性。我们开发了一种多阶段热处理方法,以融合PTFE纳米颗粒、固化打印结构并去除添加剂。我们使用成像、力学测试和实验统计设计对这些结构的流变学和力学性能以及加工参数进行了广泛表征。重要的是,最终打印的PTFE结构的一些力学和结构性能类似于模压PTFE的性能,此外,力学性能是可调的。我们预计,这种通用方法将有助于使用DIW生产3D打印的PTFE部件,在工程和医学领域具有重大潜在应用。