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用于3D打印的具有互穿网络的高性能氰酸酯树脂。

High-Performance Cyanate Ester Resins with Interpenetration Networks for 3D Printing.

作者信息

Zhou Zhao-Xi, Li Yuewei, Zhong Jie, Luo Zhen, Gong Cui-Ran, Zheng Yang-Qing, Peng Shuqiang, Yu Li-Ming, Wu Lixin, Xu Ying

机构信息

Key Laboratory of Coal to Ethylene Glycol and Its Related Technology, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350000, Fujian, China.

Key Laboratory of Design and Assembly of Functional Nanostructures, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350002, Fujian, China.

出版信息

ACS Appl Mater Interfaces. 2020 Aug 26;12(34):38682-38689. doi: 10.1021/acsami.0c10909. Epub 2020 Aug 11.

Abstract

As the 3D printing technology is getting more and more popular and useful, demands for materials for 3D printing have increased significantly. Cyanate ester (CE) resin possesses the characteristics of high heat distortion temperature and high glass transition temperature, outstanding mechanical properties, low dielectric constant, and excellent water uptake. However, CE resin has not been widely used in 3D printing of UV curing because it is difficult for photopolymerizable groups to graft onto the chains of CE resin. On the other hand, the glass transition temperature () of the homopolymer of the tris(2-hydroxyethyl)isocyanurate triacrylate (THEICTA) outclasses that of other acrylates. Although THEICTA is particularly advantageous to prepare a UV-curing prepolymer with high glass transition temperature, it also cannot be directly used for fabricating heat-resistant 3D-printed parts because it is solid and adding diluents will reduce the thermal stability of printed objects. This study is unique in producing 3D-printed materials, in which the THEICTA tactfully dissolves in low viscosity (about 100 mPa·s under 25 °C) bisphenol E cyanate (BECy) without sacrificing two kinds of bulk material properties. In the process of 3D printing, the carbon-carbon double bonds from THEICTA are cured by radical polymerization. Postprinting thermal treatment transforms three cyanate groups to a triazine ring structure. Additionally, the two kinds of structures are interpenetrating. The high-performance 3D-printing material has potential in fields ranging from space flight and aviation to the automotive and electronic industry.

摘要

随着3D打印技术越来越普及且实用,对3D打印材料的需求显著增加。氰酸酯(CE)树脂具有高热变形温度和高玻璃化转变温度、出色的机械性能、低介电常数以及优异的吸水性等特点。然而,CE树脂尚未在紫外光固化3D打印中广泛应用,因为可光聚合基团难以接枝到CE树脂链上。另一方面,三(2-羟乙基)异氰尿酸酯三丙烯酸酯(THEICTA)的均聚物的玻璃化转变温度高于其他丙烯酸酯。尽管THEICTA在制备具有高玻璃化转变温度的紫外光固化预聚物方面特别有利,但它也不能直接用于制造耐热3D打印部件,因为它是固体,添加稀释剂会降低打印物体的热稳定性。本研究在生产3D打印材料方面独具特色,其中THEICTA巧妙地溶解在低粘度(25℃下约100mPa·s)的双酚E氰酸酯(BECy)中,而不牺牲两种本体材料的性能。在3D打印过程中,THEICTA中的碳-碳双键通过自由基聚合固化。打印后热处理将三个氰酸酯基团转变为三嗪环结构。此外,两种结构相互贯穿。这种高性能3D打印材料在从航天航空到汽车和电子工业等领域具有潜力。

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