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An anionic polyelectrolyte hybrid for wood-polyethylene composites with high strength and fire safety via self-assembly

机译:一种通过自组装具有高强度和防火安全性的木聚乙烯复合材料的阴离子聚电解质杂交体

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Wood-plastic composite (WPC), as a renewable and sustainable material, has received wide attention, but its inherent flammability greatly limits its broad application in residential construction and so on. In this work, an anionic polyelectrolyte hybrid (APP-CNC) was built and applied to derive simultaneously flame-retardancy-improved and mechanically strengthened WPC. It was constructed with ammonium polyphosphate (APP) and cellulose nanocrystals (CNC) by self-assembly with ionic and hydrogen bonding. The physical crosslinking network between APP-CNC hybrid enabled the whole materials possess both high load capacity and good deformation capacity synchronously. According to the digital image correlation (DIC), the strain transferred uniformly from HDPE molecular to wood fibers via the physical crosslinking network based on hydrogen bonding, and hence an increased high deformation region occurred and distributed uniformly in WPC/APP-CNC. Compared with neat WPC, the tensile strength and Young's modulus of WPC/APP-9 wt%CNC increased by 42.69% and 75.90%, respectively. During pyrolysis, CNC promoted hybrid to pyrolyze ahead (T-5% of 298 degrees C) and provided a carbon skeleton for char forming. Meanwhile, physical crosslinking network further caused a more compact char residue with a higher graphitization during combustion of WPC. For WPC/APP-9 wt%CNC, it had a significant decrease in average heat release and total heat release of 62.6%, and 23.8% respectively, compared with those of neat WPC. This work indicated that polyelectrolyte hybrid had a potential application prospect in preparation of high-performance, high-function and high-value-added WPC. (C) 2020 Elsevier Ltd. All rights reserved.
机译:作为可再生和可持续材料的木塑复合材料(WPC)受到广泛的关注,但其固有的可燃性大大限制了其在住宅建筑方面的广泛应用等。在这项工作中,构建并施加了一种阴离子聚电解质杂交(APP-CNC),同时衍生阻燃性和机械加强的WPC。通过具有离子和氢键的自组装,用多磷酸铵(APP)和纤维素纳米晶(CNC)构成。 APP-CNC混合动力之间的物理交联网络使整个材料具有高负载能力和同步变形容量。根据数字图像相关(DIC),基于氢键合的物理交联网络从HDPE分子到木纤维均匀地传递的菌株,因此在WPC / APP-CNC中均匀地发生和分布增加的高变形区域。与整洁的WPC相比,抗拉强度和WPC / APP-9wt%CNC的抗拉强度分别增加了42.69%和75.90%。在热解期间,CNC促进了杂交物以热解(T-5%298℃的T-5%)并提供用于炭的碳骨架。同时,物理交联网络进一步引起了在WPC燃烧期间具有更高的石墨化的更紧凑的炭残余物。对于WPC / APP-9wt%CNC,与整齐WPC的水平相比,它分别对平均热释放和总热量释放的总热释放和总热量释放的显着降低分别为23.8%。这项工作表明,聚电解质杂交物在制备高性能,高功能和高附加值的WPC方面具有潜在的应用前景。 (c)2020 elestvier有限公司保留所有权利。

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