Yadi Yang , Jing Zhao , Jianzheng Cui , Yunlong Li , Bowen Jiang
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The results indicate that the incorporation of functional groups to the Gr surface is able to significantly improve the mechanical properties and wear resistance of the nanocomposites, and the COOH-functionalized Gr nanosheet shows the best reinforcing effect due to the synergistic effect of its own high surface roughness and strong interfacial interaction between itself and the matrix. It is also found that the friction coefficient of the nanocomposites is obviously increased by the inclusion of functionalized Gr nanosheets, and the greater the surface roughness of the functionalized Gr nanosheet, the more significant the growth of the friction coefficient of the nanocomposites. The pull-out test and confined shear simulation reveal that due to the increased interfacial shear strength and the isolation of functional groups, an inhomogeneous transfer film is formed at the friction interface, leading to a decreased anti-friction property. This study provides some guidance for the future design and development of polymer nanocomposites with excellent mechanical and tribological performance for use in extreme service conditions.</p></div>","PeriodicalId":20628,"journal":{"name":"Polymer Testing","volume":"138 ","pages":"Article 108555"},"PeriodicalIF":5.0000,"publicationDate":"2024-08-23","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.sciencedirect.com/science/article/pii/S0142941824002320/pdfft?md5=c81892e61704b4e48147d4871e6d61ff&pid=1-s2.0-S0142941824002320-main.pdf","citationCount":"0","resultStr":"{\"title\":\"Investigation on mechanical and tribological properties of PTFE nanocomposites reinforced by surface-modified graphene using molecular dynamics simulations\",\"authors\":\"Yadi Yang , Jing Zhao , Jianzheng Cui , Yunlong Li , Bowen Jiang\",\"doi\":\"10.1016/j.polymertesting.2024.108555\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>Surface-modified nanoparticles are commonly used to improve the mechanical properties and wear resistance of polytetrafluoroethylene (PTFE). 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It is also found that the friction coefficient of the nanocomposites is obviously increased by the inclusion of functionalized Gr nanosheets, and the greater the surface roughness of the functionalized Gr nanosheet, the more significant the growth of the friction coefficient of the nanocomposites. The pull-out test and confined shear simulation reveal that due to the increased interfacial shear strength and the isolation of functional groups, an inhomogeneous transfer film is formed at the friction interface, leading to a decreased anti-friction property. 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引用次数: 0
摘要
表面改性纳米粒子通常用于改善聚四氟乙烯(PTFE)的机械性能和耐磨性。然而,定量揭示不同官能团修饰的石墨烯(Gr)对聚四氟乙烯机械性能和摩擦学性能的作用机理的研究较少。本文利用分子动力学模拟研究了石墨烯纳米片表面的四种官能团(-OH、-NH2、-COOH 和 -COOCH3 官能团)对 PTFE 纳米复合材料机械性能和摩擦学性能的影响。结果表明,在 Gr 表面加入官能团能显著改善纳米复合材料的力学性能和耐磨性,而 COOH 官能化的 Gr 纳米片由于其自身的高表面粗糙度和与基体之间的强界面相互作用的协同效应,显示出最佳的增强效果。研究还发现,功能化 Gr 纳米片的加入明显增加了纳米复合材料的摩擦系数,功能化 Gr 纳米片的表面粗糙度越大,纳米复合材料摩擦系数的增长越明显。拉拔试验和约束剪切模拟显示,由于界面剪切强度的增加和官能团的隔离,摩擦界面上形成了不均匀的转移膜,导致抗摩擦性能下降。这项研究为今后设计和开发在极端使用条件下具有优异机械和摩擦学性能的聚合物纳米复合材料提供了一些指导。
Investigation on mechanical and tribological properties of PTFE nanocomposites reinforced by surface-modified graphene using molecular dynamics simulations
Surface-modified nanoparticles are commonly used to improve the mechanical properties and wear resistance of polytetrafluoroethylene (PTFE). However, fewer studies have been devoted to quantitatively revealing the action mechanism of graphene (Gr) modified with different functional groups on the mechanical and tribological properties of PTFE. Herein, the effects of four functional groups (−OH, −NH2, −COOH, and −COOCH3 functional groups) on the surface of Gr nanosheets on the mechanical and tribological properties of PTFE nanocomposites are studied using molecular dynamics simulations. The results indicate that the incorporation of functional groups to the Gr surface is able to significantly improve the mechanical properties and wear resistance of the nanocomposites, and the COOH-functionalized Gr nanosheet shows the best reinforcing effect due to the synergistic effect of its own high surface roughness and strong interfacial interaction between itself and the matrix. It is also found that the friction coefficient of the nanocomposites is obviously increased by the inclusion of functionalized Gr nanosheets, and the greater the surface roughness of the functionalized Gr nanosheet, the more significant the growth of the friction coefficient of the nanocomposites. The pull-out test and confined shear simulation reveal that due to the increased interfacial shear strength and the isolation of functional groups, an inhomogeneous transfer film is formed at the friction interface, leading to a decreased anti-friction property. This study provides some guidance for the future design and development of polymer nanocomposites with excellent mechanical and tribological performance for use in extreme service conditions.
期刊介绍:
Polymer Testing focuses on the testing, analysis and characterization of polymer materials, including both synthetic and natural or biobased polymers. Novel testing methods and the testing of novel polymeric materials in bulk, solution and dispersion is covered. In addition, we welcome the submission of the testing of polymeric materials for a wide range of applications and industrial products as well as nanoscale characterization.
The scope includes but is not limited to the following main topics:
Novel testing methods and Chemical analysis
• mechanical, thermal, electrical, chemical, imaging, spectroscopy, scattering and rheology
Physical properties and behaviour of novel polymer systems
• nanoscale properties, morphology, transport properties
Degradation and recycling of polymeric materials when combined with novel testing or characterization methods
• degradation, biodegradation, ageing and fire retardancy
Modelling and Simulation work will be only considered when it is linked to new or previously published experimental results.