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高模量碳纤维表面极性官能团的构建及其对复合材料界面性能的影响。

Construction of Polar Functional Groups on the Surface of a High-Modulus Carbon Fiber and Its Effect on the Interfacial Properties of Composites.

作者信息

Xiao Jing, Tian Siyuan, Zhou Hang, Gao Aijun, Xu Lianghua

机构信息

Key Laboratory of Carbon Fiber and Functional Polymer, Ministry of Education, Beijing University of Chemical Technology, Beijing 100029, China.

出版信息

ACS Omega. 2023 Jul 31;8(32):29262-29269. doi: 10.1021/acsomega.3c02596. eCollection 2023 Aug 15.

Abstract

The interfacial bonding between carbon fibers and the resin matrix affects the mechanical properties of carbon fibers, and the increase of modulus brings a challenge to the interfacial properties of carbon fibers. The traditional anodic oxidation with ammonium bicarbonate as an electrolyte has a limited effect on the surface treatment for high-modulus carbon fibers. In this paper, anodic oxidation with an acidic electrolyte is used to treat high-modulus carbon fibers. The influence mechanism of a graphitized structure on the anodizing reaction of the carbon fiber surface was studied. Raman spectroscopy, XPS, scanning electron microscopy, dynamic contact angle, and micro-debonding were used to characterize the effect of surface treatment and its influence on interfacial properties. The results show that with a certain concentration of sulfuric acid as an electrolyte, the oxidation of the carbon fiber surface with high modulus occurs more on the graphite boundary defects. Carbonylation occurs mainly in carbon fibers with high modulus. The surface of the carbon fiber with a relatively low modulus is mainly hydroxylated and carboxylated. The surface energy and interfacial properties of high-modulus carbon fibers were improved effectively by anodic oxidation with sulfuric acid as an electrolyte. Under the condition that the mechanical properties of carbon fibers are not decreased, the surface energy of high-modulus carbon fibers with 352 GPa increases from 36.17 to 45.41 mN/m, and the interfacial shear strength (IFSS) with the epoxy resin increases by 80.8% from 34.9 to 63.1 MPa. When the fiber modulus is 455 GPa, the surface energy of the carbon fiber increases from 32.32 to 43.73 mN/m, and IFSS increases by 253.4% from 11.8 to 41.7 MPa.

摘要

碳纤维与树脂基体之间的界面结合会影响碳纤维的力学性能,模量的增加给碳纤维的界面性能带来了挑战。以碳酸氢铵为电解质的传统阳极氧化对高模量碳纤维的表面处理效果有限。本文采用酸性电解质进行阳极氧化处理高模量碳纤维。研究了石墨化结构对碳纤维表面阳极氧化反应的影响机理。利用拉曼光谱、X射线光电子能谱、扫描电子显微镜、动态接触角和微脱粘等手段对表面处理效果及其对界面性能的影响进行了表征。结果表明,以一定浓度的硫酸为电解质时,高模量碳纤维表面的氧化更多地发生在石墨边界缺陷处。羰基化主要发生在高模量碳纤维中。模量相对较低的碳纤维表面主要发生羟基化和羧基化。以硫酸为电解质进行阳极氧化有效地改善了高模量碳纤维的表面能和界面性能。在不降低碳纤维力学性能的条件下,模量为352 GPa的高模量碳纤维表面能从36.17 mN/m增加到45.41 mN/m,与环氧树脂的界面剪切强度(IFSS)从34.9 MPa增加80.8%至63.1 MPa。当纤维模量为455 GPa时,碳纤维表面能从32.32 mN/m增加到43.73 mN/m,IFSS从11.8 MPa增加253.4%至41.7 MPa。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5ecd/10433464/eb6b7920b47b/ao3c02596_0002.jpg

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