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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Structure-property relationships of in-situ PMMA modified nano-sized antimony trioxide filled poly(vinyl chloride) nanocomposites
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Structure-property relationships of in-situ PMMA modified nano-sized antimony trioxide filled poly(vinyl chloride) nanocomposites

机译:原位PMMA修饰的纳米级三氧化二锑填充聚氯乙烯纳米复合材料的结构性质关系

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摘要

Nano-sized antimony trioxide (Sb_2O_3) particles were modified by in-situ methyl methacrylate (MMA)/Sb_2O_3 polymerization.Subsequently,these modified nanoparticles were compounded with poly(vinyl chloride) (PVC) to prepare PVC/Sb_2O_3 nanocomposites.In-situ MMA/Sb_2O_3 polymerization kinetics shows that nano-Sb_2O_3 particles do not inhibit polymerization of MMA.PMMA shell covered on the surface of nano-sized Sb_2O_3 particles have enhanced interactions with PVC matrix,breaking down nano-Sb_2O_3 particle agglomerates and improving their dispersion in the matrix (average particle size of 60-80 nm) and also increasing the particle-matrix interfacial adhesion.Thus,nano-Sb_2O_3 particles reinforce and toughen PVC.It was observed that at 2.5 wt% of nano-Sb_2O_3 particles modified by in-situ PMMA optimal properties were achieved in Young's modulus,tensile yield strength,elongation at break and Charpy notched impact strength.Detailed examinations of micro-failure mechanisms of tensile specimens showed that nano-Sb_2O_3 particles acted as stress concentrators leading to debonding/voiding and deformation of the matrix material around the nanoparticles.Under impact fracture,the nano-Sb_2O_3 particles prolonged crack initiation time,and increased energy absorptions for crack initiation and fracture propagation caused by strong interfacial interaction between nanoparticles and PVC matrix.These mechanisms lead to impact toughening of the nanocomposites.
机译:通过原位甲基丙烯酸甲酯(MMA)/ Sb_2O_3聚合改性纳米三氧化二锑(Sb_2O_3)颗粒,然后将改性纳米颗粒与聚氯乙烯(PVC)混合制备PVC / Sb_2O_3纳米复合材料。 MMA / Sb_2O_3聚合动力学表明,纳米Sb_2O_3颗粒不会抑制MMA的聚合。纳米Sb_2O_3颗粒表面覆盖的PMMA壳与PVC基体的相互作用增强,破坏了纳米Sb_2O_3颗粒的团聚并提高了它们在硅粉中的分散性。基体(平均粒径为60-80 nm)并增加了颗粒与基体之间的界面粘附力。因此,纳米Sb_2O_3颗粒可增强PVC的增韧作用。观察到2.5%的纳米Sb_2O_3颗粒被原位改性PMMA的最佳性能达到了杨氏模量,拉伸屈服强度,断裂伸长率和夏比缺口冲击强度。详细检查了拉伸试样的微观破坏机理enss表明,纳米Sb_2O_3颗粒充当应力集中剂,导致纳米材料周围的基体材料脱粘/孔隙和变形。在冲击断裂下,纳米Sb_2O_3颗粒延长了裂纹萌生时间,并增加了裂纹萌生和裂纹扩展的能量吸收这是由于纳米颗粒与PVC基体之间强烈的界面相互作用引起的。这些机理导致纳米复合材料的冲击增韧。

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