聚氨酯
阻燃剂
材料科学
劈理(地质)
催化作用
复合材料
化学工程
共聚物
高分子化学
聚合物
化学
有机化学
工程类
断裂(地质)
作者
Danxuan Fang,Ming‐Jun Chen,Fu‐Rong Zeng,Shuai-Qi Guo,Lei He,Bowen Liu,Sheng‐Chao Huang,Haibo Zhao,Yu‐Zhong Wang
出处
期刊:Materials horizons
[The Royal Society of Chemistry]
日期:2024-01-01
被引量:1
摘要
Polyurethane (PU) foams, pivotal in modern life, face challenges suh as fire hazards and environmental waste burdens. The current reliance of PU on potentially ecotoxic halogen-/phosphorus-based flame retardants impedes large-scale material recycling. Here, our demonstrated controllable catalytic cracking strategy, using cesium salts, enables self-evolving recycling of flame-retardant PU. The incorporation of cesium citrates facilitates efficient urethane bond cleavage at low temperatures (160 °C), promoting effective recycling, while encouraging pyrolytic rearrangement of isocyanates into char at high temperatures (300 °C) for enhanced PU fire safety. Even in the absence of halogen/phosphorus components, this foam exhibits a substantial increase in ignition time (+258.8%) and a significant reduction in total smoke release (-79%). This flame-retardant foam can be easily recycled into high-quality polyol under mild conditions, 60 °C lower than that for the pure foam. Notably, the trace amounts of cesium gathered in recycled polyols stimulate the regenerated PU to undergo self-evolution, improving both flame-retardancy and mechanical properties. Our controllable catalytic cracking strategy paves the way for the self-evolutionary recycling of high-performance firefighting materials.
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