Akash Basu, Sampath Parasuram, Supriya H, Akshay Sunil Salvi, S. Kumar and Suryasarathi Bose*,
{"title":"用于可修复和可回收碳纤维增强复合材料的三重动态网络激活聚合物","authors":"Akash Basu, Sampath Parasuram, Supriya H, Akshay Sunil Salvi, S. Kumar and Suryasarathi Bose*, ","doi":"10.1021/acsapm.5c0018110.1021/acsapm.5c00181","DOIUrl":null,"url":null,"abstract":"<p >Conventional thermosets such as epoxies offer superior mechanical properties but lack recyclability, posing environmental challenges and sustainability concerns. In this context, vitrimer, which offers “thermoset-like” mechanical properties and “thermoplastic-like” flow behavior, emerges as a promising alternative. Herein, a triple dynamic covalent adaptable network (CAN) was installed in the epoxy system to offer recyclability without compromising the mechanical properties. This “epoxy vitrimer” was used to design a carbon fiber-reinforced vitrimer epoxy (CFRVE) laminate. Fourier transform infrared (FTIR) was used to confirm the formation of cross-links with epoxide groups. The tensile strength for these systems is in the range of 43–53 MPa depending on the number of preinstalled CANs, which compares well with the conventional epoxies. Thermal and mechanical analyses of the vitrimer epoxy systems reveal exceptional properties, including degradation temperatures above 250 °C and an activation energy of 56 kJ/mol for stress relaxation. CFRVE laminates, fabricated via vacuum-assisted resin transfer molding (VARTM), exhibit 38 MPa interlaminar shear strength (ILSS) and 520 MPa flexural strength (FS), which are comparable to those of conventional carbon fiber-reinforced epoxy (CFRE) laminates. The CFRVE laminate exhibits a remarkable self-healing efficiency of 56% in ILSS. Furthermore, the vitrimer matrix enables nondestructive recovery of carbon fibers (CFs) and reusable degradation products, offering a closed-loop recycling solution for CFRVE composites.</p>","PeriodicalId":7,"journal":{"name":"ACS Applied Polymer Materials","volume":"7 8","pages":"4931–4943 4931–4943"},"PeriodicalIF":4.4000,"publicationDate":"2025-04-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Triple Dynamic Network-Enabled Vitrimer for Repairable and Recyclable Carbon Fiber-Reinforced Composites\",\"authors\":\"Akash Basu, Sampath Parasuram, Supriya H, Akshay Sunil Salvi, S. Kumar and Suryasarathi Bose*, \",\"doi\":\"10.1021/acsapm.5c0018110.1021/acsapm.5c00181\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Conventional thermosets such as epoxies offer superior mechanical properties but lack recyclability, posing environmental challenges and sustainability concerns. In this context, vitrimer, which offers “thermoset-like” mechanical properties and “thermoplastic-like” flow behavior, emerges as a promising alternative. Herein, a triple dynamic covalent adaptable network (CAN) was installed in the epoxy system to offer recyclability without compromising the mechanical properties. This “epoxy vitrimer” was used to design a carbon fiber-reinforced vitrimer epoxy (CFRVE) laminate. Fourier transform infrared (FTIR) was used to confirm the formation of cross-links with epoxide groups. The tensile strength for these systems is in the range of 43–53 MPa depending on the number of preinstalled CANs, which compares well with the conventional epoxies. Thermal and mechanical analyses of the vitrimer epoxy systems reveal exceptional properties, including degradation temperatures above 250 °C and an activation energy of 56 kJ/mol for stress relaxation. CFRVE laminates, fabricated via vacuum-assisted resin transfer molding (VARTM), exhibit 38 MPa interlaminar shear strength (ILSS) and 520 MPa flexural strength (FS), which are comparable to those of conventional carbon fiber-reinforced epoxy (CFRE) laminates. The CFRVE laminate exhibits a remarkable self-healing efficiency of 56% in ILSS. 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Triple Dynamic Network-Enabled Vitrimer for Repairable and Recyclable Carbon Fiber-Reinforced Composites
Conventional thermosets such as epoxies offer superior mechanical properties but lack recyclability, posing environmental challenges and sustainability concerns. In this context, vitrimer, which offers “thermoset-like” mechanical properties and “thermoplastic-like” flow behavior, emerges as a promising alternative. Herein, a triple dynamic covalent adaptable network (CAN) was installed in the epoxy system to offer recyclability without compromising the mechanical properties. This “epoxy vitrimer” was used to design a carbon fiber-reinforced vitrimer epoxy (CFRVE) laminate. Fourier transform infrared (FTIR) was used to confirm the formation of cross-links with epoxide groups. The tensile strength for these systems is in the range of 43–53 MPa depending on the number of preinstalled CANs, which compares well with the conventional epoxies. Thermal and mechanical analyses of the vitrimer epoxy systems reveal exceptional properties, including degradation temperatures above 250 °C and an activation energy of 56 kJ/mol for stress relaxation. CFRVE laminates, fabricated via vacuum-assisted resin transfer molding (VARTM), exhibit 38 MPa interlaminar shear strength (ILSS) and 520 MPa flexural strength (FS), which are comparable to those of conventional carbon fiber-reinforced epoxy (CFRE) laminates. The CFRVE laminate exhibits a remarkable self-healing efficiency of 56% in ILSS. Furthermore, the vitrimer matrix enables nondestructive recovery of carbon fibers (CFs) and reusable degradation products, offering a closed-loop recycling solution for CFRVE composites.
期刊介绍:
ACS Applied Polymer Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics, and biology relevant to applications of polymers.
The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates fundamental knowledge in the areas of materials, engineering, physics, bioscience, polymer science and chemistry into important polymer applications. The journal is specifically interested in work that addresses relationships among structure, processing, morphology, chemistry, properties, and function as well as work that provide insights into mechanisms critical to the performance of the polymer for applications.