用于 3D 打印材料设计的粒子-聚合物相互作用

Kellen Mitchell, W. Hua, Erick Bandala, A. Gaharwar, Yifei Jin
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引用次数: 0

摘要

嵌入式墨水写入(EIW)和直接墨水写入(DIW)是材料挤压领域三维(3D)打印的主要策略。这些方法可以利用屈服应力支撑槽或自支撑油墨快速制造复杂的三维结构。这两种方法都具有出色的打印保真度和与不同油墨材料的兼容性,因此已在生物医学、软机器人和智能传感器等多个领域得到广泛研究。能够形成体积填充三维网络的颗粒添加剂经常被加入聚合物溶剂中。这种整合对于设计成功的支撑槽和油墨材料配方所必需的微观结构至关重要。颗粒添加剂和聚合物溶剂之间的相互作用对于在各种三维打印策略中实现流变可调性至关重要,但这一领域尚未得到系统的研究。因此,在本评论中,我们研究了颗粒与聚合物相互作用的各种机制、由此产生的微观结构及其对机械和流变特性的后续影响。总之,这项工作旨在为挤出增材制造领域(特别是 EIW 和 DIW)的下一代材料设计提供基础指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Particle–polymer interactions for 3D printing material design
Embedded ink writing (EIW) and direct ink writing (DIW) constitute the primary strategies for three-dimensional (3D) printing within the realm of material extrusion. These methods enable the rapid fabrication of complex 3D structures, utilizing either yield-stress support baths or self-supporting inks. Both these strategies have been extensively studied across a range of fields, including biomedical, soft robotics, and smart sensors, due to their outstanding print fidelity and compatibility with diverse ink materials. Particle additives capable of forming volume-filling 3D networks are frequently incorporated into polymer solvents. This integration is crucial for engineering the requisite microstructures essential for the formulation of successful support bath and ink materials. The interplay between the particle additives and polymer solvents is critical for achieving rheological tunability in various 3D printing strategies, yet this area has not been systematically reviewed. Therefore, in this critical review, we examined various mechanisms of particle–polymer interactions, the resulting microstructures, and their subsequent impact on mechanical and rheological properties. Overall, this work aims to serve as a foundational guideline for the design of next-generation materials in the field of extrusion additive manufacturing, specifically for EIW and DIW.
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