Knowledge Agora



Similar Articles

Title Dynamic crosslinking compatibilizes immiscible mixed plastics
ID_Doc 9136
Authors Clarke, RW; Sandmeier, T; Franklin, KA; Reich, D; Zhang, X; Vengallur, N; Patra, TK; Tannenbaum, RJ; Adhikari, S; Kumar, SK; Rovis, T; Chen, EYX
Title Dynamic crosslinking compatibilizes immiscible mixed plastics
Year 2023
Published Nature, 616.0, 7958
Abstract The global plastics problem is a trifecta, greatly affecting environment, energy and climate(1-4). Many innovative closed/open-loop plastics recycling or upcycling strategies have been proposed or developed(5-16), addressing various aspects of the issues underpinning the achievement of a circular economy(17-19). In this context, reusing mixed-plastics waste presents a particular challenge with no current effective closed-loop solution(20). This is because such mixed plastics, especially polar/apolar polymer mixtures, are typically incompatible and phase separate, leading to materials with substantially inferior properties. To address this key barrier, here we introduce a new compatibilization strategy that installs dynamic crosslinkers into several classes of binary, ternary and postconsumer immiscible polymer mixtures in situ. Our combined experimental and modelling studies show that specifically designed classes of dynamic crosslinker can reactivate mixed-plastics chains, represented here by apolar polyolefins and polar polyesters, by compatibilizing them via dynamic formation of graft multiblock copolymers. The resulting in-situ-generated dynamic thermosets exhibit intrinsic reprocessability and enhanced tensile strength and creep resistance relative to virgin plastics. This approach avoids the need for de/reconstruction and thus potentially provides an alternative, facile route towards the recovery of the endowed energy and materials value of individual plastics.
PDF

Similar Articles

ID Score Article
27187 Qian, J; Dunn, CB; Qiang, Z Design of Copolymer-Based Blend Compatibilizers for Mixed Plastic Recycling(2023)Macromolecular Chemistry And Physics, 224.0, 24
2972 Griffini, G; Rigatelli, B; Turri, S Diels-Alder Macromolecular Networks in Recyclable, Repairable and Reprocessable Polymer Composites for the Circular Economy - A Review(2023)Macromolecular Materials And Engineering, 308, 11
7496 Kahlen, S; Braun, H; Legras, A; Mileva, D; Wang, J; Gahleitner, M Upgrading post-consumer polyolefin recyclates with advanced polypropylene copolymers(2024)
24241 Hassanian-Moghaddam, D; Asghari, N; Ahmadi, M Circular Polyolefins: Advances toward a Sustainable Future(2023)Macromolecules, 56, 15
24114 Sadri, M; Patil, S; Perkins, J; Gunter, Z; Cheng, SW; Qiang, Z Polymeric Dynamic Crosslinker for Upcycling of Fragile Low-Molecular-Weight Polypropylene(2023)Acs Applied Polymer Materials, 5, 6
14452 Häussler, M; Eck, M; Rothauer, D; Mecking, S Closed-loop recycling of polyethylene-like materials(2021)Nature, 590, 7846
15426 Dey, I; Ajnas, NM; Rege, SS; Islam, SS; Misra, A; Samanta, K; Manna, K; Bose, S Does the Varying Reactivity in the Transient Polymer Network through Dynamic Exchange Regulate the Closed-Loop Circularity in Polyolefin Vitrimers?(2023)Acs Applied Materials & Interfaces, 15, 45
28435 Highmoore, JF; Kariyawasam, LS; Trenor, SR; Yang, Y Design of depolymerizable polymers toward a circular economy(2024)Green Chemistry, 26.0, 5
19996 Shi, CX; Quinn, EC; Diment, WT; Chen, EYX Recyclable and (Bio)degradable Polyesters in a Circular Plastics Economy(2024)Chemical Reviews, 124.0, 7
10374 Gaduan, AN; Singkronart, K; Bell, C; Tierney, E; Burgstaller, C; Lee, KY Mechanical Upcycling Immiscible Polyethylene Terephthalate-Polypropylene Blends with Carbon Fiber Reinforcement(2022)Acs Applied Polymer Materials, 4, 5
Scroll