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纤维素纳米原纤维辅助的直接墨水书写3D打印弹性聚氨酯

Direct Ink Writing 3D Printing Elastomeric Polyurethane Aided by Cellulose Nanofibrils.

作者信息

Yu Zhengyang, Sun Xia, Zhu Yeling, Zhou Elaine, Cheng Changfeng, Zhu Jiaying, Yang Pu, Zheng Dingyuan, Zhang Yifan, Panahi-Sarmad Mahyar, Jiang Feng

机构信息

Sustainable Functional Biomaterials Laboratory, Department of Wood Science, The University of British Columbia, Vancouver, British Columbia V6T 1Z4, Canada.

出版信息

ACS Nano. 2024 Oct 15;18(41):28142-28153. doi: 10.1021/acsnano.4c07681. Epub 2024 Oct 1.

Abstract

3D printing of a flexible polyurethane elastomer is highly demandable for its potential to revolutionize industries ranging from footwear to soft robotics thanks to its exceptional design flexibility and elasticity performance. Nevertheless, conventional methods like fused deposition modeling (FDM) and vat photopolymerization (VPP) polyurethane 3D printing typically limit material options to thermoplastic or photocurable polyurethanes. In this research, a water-borne polyurethane ink was synthesized for direct ink writing (DIW) 3D printing through the incorporation of cellulose nanofibrils (CNFs), enabling direct printing of complex, monolithic elastomeric structures at room temperature that can maintain the designed structure. Additionally, a solvent-induced fast solidification (SIFS) method was introduced to facilitate room-temperature curing and enhance mechanical properties. The 3D-printed WPU structures demonstrated strong interfacial adhesion, exhibiting high ultimate tensile strength of up to 22 MPa and an elongation at break of 951%. The 3D-printed WPU structures also demonstrated outstanding resilience and durability, capable of enduring more than 100 cycles of compression and tension as well as withstanding vehicle crushing and heavy lifting. This method also shows suitability for 3D printing complex structures such as a vase and an octopus.

摘要

柔性聚氨酯弹性体的3D打印因其卓越的设计灵活性和弹性性能,在从鞋类到软机器人等行业具有变革潜力,因而备受需求。然而,诸如熔融沉积建模(FDM)和光固化聚合(VPP)等传统的聚氨酯3D打印方法通常将材料选择限制在热塑性或光固化聚氨酯上。在本研究中,通过加入纤维素纳米纤维(CNF)合成了一种用于直接墨水书写(DIW)3D打印的水性聚氨酯墨水,能够在室温下直接打印复杂的整体弹性体结构,并能保持设计的结构。此外,引入了溶剂诱导快速固化(SIFS)方法来促进室温固化并增强机械性能。3D打印的水性聚氨酯结构表现出很强的界面附着力,其极限拉伸强度高达22MPa,断裂伸长率达951%。3D打印的水性聚氨酯结构还表现出出色的弹性和耐久性,能够承受100多次压缩和拉伸循环,以及经受车辆碾压和重物起吊。该方法还适用于3D打印花瓶和章鱼等复杂结构。

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