Toughening Brittle Poly(ethylene Furanoate) with Linear Low-Density Polyethylene via Interface Modulation Using Reactive Compatibilizers. [PDF]
Ahmed S +4 more
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Geometric Freezing of In-Situ Fibrillated PP/PA66 Composites via Low-Temperature Injection: Decoupling the Role of Draw Ratio and Compatibilization. [PDF]
Zhang R +7 more
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Biodegradable Plastics as Sustainable Alternatives: Advances, Basics, Challenges, and Directions for the Future. [PDF]
Hwang E +5 more
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Large-Scale Compatibilization of Postconsumer Polyolefins in the Presence of Paraffin Wax as a Rheology Modifier. [PDF]
Ganapathi A +3 more
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Synergistic Modification of Recycled PET Using Halloysite Nanotubes and a Reactive Terpolymer for Enhanced Toughness and Processability. [PDF]
Hu Z, Wu Z, Wu X, Ren X, Zhang R.
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Automated Learning of a Dense Manifold of Electronic States and Electronic Energy Transfer and Reactions in Singlet O Collisions with N<sub>2</sub>. [PDF]
Meng Q +4 more
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Machine Learning-Based Optimization of Mechanical and Morphological Performance of Polylactic Acid Nanocomposites with Lignin Nanoparticles. [PDF]
Imren E +6 more
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Abstract Reactive compatibilization is an effective method to improve the compatibility of immiscible polymer blends. The in-situ-formed graft/block copolymers should be thermodynamically located at the interface to bridge the neighboring phases. Unfortunately, they are often pulled out of the interface because of the asymmetric molecular structures.
Xiaoying Gu
exaly +2 more sources
Reactive compatibilizers are usually used to enhance the compatibility of immiscible polymer blends. However, reactive linear compatibilizers containing reactive groups on the main chains form graft copolymers during reactive blending, and such graft copolymers with an asymmetric molecular structure are often "pulled in" or "pulled out" under ...
Hengti Wang
exaly +3 more sources

