Mohsin Ejaz , Mohamed Gamal Mohamed , Wei-Chun Huang , Yang-Chin Kao , Wei-Cheng Chen , Shiao-Wei Kuo
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引用次数: 0
Abstract
An increasing number of high-performance industries are prioritizing the use of polymeric materials with exceptional thermal stability to support long-term advancements toward a more sustainable future. In this study, we first synthesized an allyl-functionalized benzoxazine (BZ) with a diacetal structure by reacting 4,4′-(2,4,8,10-tetraoxaspiro[5.5]undecane-3,9-diyl)diphenol (ACE) with allylamine in the presence of paraformaldehyde to obtain ACE-BZ monomer. Highly thermally stable organic-inorganic benzoxazines were subsequently prepared through a hydrosilylation reaction of ACE-BZ with double-decker silsesquioxane (DDSQ) and octakis(dimethylsilyloxy)octasilsesquioxane (ODMS-POSS), yielding DDSQ-ACE-BZ and POSS-ACE-BZ polymer networks, respectively. The chemical structures of ACE-BZ, DDSQ-ACE-BZ, and POSS-ACE-BZ were confirmed using FTIR, 1H NMR, and 13C NMR spectroscopy; respectively. The thermal curing peaks, ring-opening polymerization (ROP) behavior, and thermal stability properties of the ACE-BZ, DDSQ-ACE-BZ, and POSS-ACE-BZ were analyzed using differential scanning calorimetry (DSC), FTIR and thermogravimetric analysis (TGA). After thermal curing, the thermal stability (Td10 ,char yields) of poly(ACE-BZ), poly(DDSQ-ACE-BZ), and poly(POSS-ACE-BZ) were (435 °C, 46 wt%), (544 °C, 75 wt%), and (510 °C, 74 wt%), respectively. Notably, poly(DDSQ-ACE-BZ) demonstrated superior thermal stability compared to poly(POSS-ACE-BZ), primarily attributed to the inherently higher thermal stability of the rigid DDSQ moiety relative to POSS. Based on our current understanding, the DDSQ-based polybenzoxazine resin discussed in this study demonstrates the highest thermal stability that has been documented so far.
期刊介绍:
European Polymer Journal is dedicated to publishing work on fundamental and applied polymer chemistry and macromolecular materials. The journal covers all aspects of polymer synthesis, including polymerization mechanisms and chemical functional transformations, with a focus on novel polymers and the relationships between molecular structure and polymer properties. In addition, we welcome submissions on bio-based or renewable polymers, stimuli-responsive systems and polymer bio-hybrids. European Polymer Journal also publishes research on the biomedical application of polymers, including drug delivery and regenerative medicine. The main scope is covered but not limited to the following core research areas:
Polymer synthesis and functionalization
• Novel synthetic routes for polymerization, functional modification, controlled/living polymerization and precision polymers.
Stimuli-responsive polymers
• Including shape memory and self-healing polymers.
Supramolecular polymers and self-assembly
• Molecular recognition and higher order polymer structures.
Renewable and sustainable polymers
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Polymers at interfaces and surfaces
• Chemistry and engineering of surfaces with biological relevance, including patterning, antifouling polymers and polymers for membrane applications.
Biomedical applications and nanomedicine
• Polymers for regenerative medicine, drug delivery molecular release and gene therapy
The scope of European Polymer Journal no longer includes Polymer Physics.