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Photopolymerization kinetics of methyl methacrylate with reactive and inert nanogels

机译:用反应性和惰性纳米凝胶的甲基丙烯酸甲酯的光聚合动力学

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The enhanced in situ photopolymerization kinetics of methyl methacrylate (MMA) to poly(methyl methacrylate) (PMMA) through the incorporation of both inert and reactive nanogel (NG) fillers under ambient conditions has been demonstrated. In addition to the polymerization kinetics, the physical and chemical properties of the prepolymeric NG were also utilized to tune the thermoplasticity and mechanical properties of the PMMA polymer network. The protocol followed in this study imparts superior MMA photopolymerization kinetics (= 60% double-bond conversion within 15 min for 35 wt% nanogel loadings and = 95% double-bond conversion in 60 min for all NG concentrations) when compared with traditional polymerization mechanisms. PMMA remained a glassy material following the incorporation of both inert and reactive NG as demonstrated by the glass transition temperature (T-g) of the ultimate networks. Network linearity is uncompromised following incorporation of inert NG additives, thereby preserving the thermoplasticity of the PMMA network. As the nonfunctionalized, inert NG content increases, the maintenance of thermoplasticity occurs at the expense of mechanical properties (10 x reduction of maximum strength at 25 wt% loading). These effects are less pronounced when reactive nanogels are employed (no significant reduction of maximum strength at 25 wt% loading with minimal crosslinking). The incorporation of NGs enable high chemical tunability within linear polymer networks. Given the wide range of monomers available for the synthesis of NGs, the methodology detailed in this study offers a scheme for the optimization of linear networks for specific targeted applications, hitherto deemed unrealistic under established polymerization protocols.
机译:已经证明了通过在环境条件下掺入惰性和反应性纳米凝胶(Ng)填料的甲基丙烯酸甲酯(MMA)的原位光聚合动力学(MMA)的原位光聚合动力学(PMMA)的增强。除了聚合动力学之外,还使用预聚物NG的物理和化学性质来调整PMMA聚合物网络的热塑性和机械性能。本研究中遵循的协议赋予优异的MMA光聚合动力学(& = 60%的双键转化率在15分钟内& 35wt%纳米凝胶载体和& = 90分钟的95%双键转化率为所有NG与传统聚合机制相比,浓度)。通过通过最终网络的玻璃化转变温度(T-G)所证明的惰性和反应性NG掺入惰性和反应性NG之后PMMA仍然是玻璃状物质。在掺入惰性NG添加剂之后,网络线性度不妥协,从而保持PMMA网络的热塑性。作为非功能化的,惰性Ng含量增加,热塑性的维持以牺牲机械性能(10 x在25wt%负载下的最大强度降低10°)。当使用反应性纳米凝胶时,这些效果不太明显(没有显着降低25wt%负载的最大强度,最小的交联时)。 NG的掺入能够在线性聚合物网络中实现高化学可调性。鉴于为合成NGS的各种单体,本研究中详述的方法提供了一种用于优化用于特定目标应用的线性网络的方案,迄今为止在已建立的聚合方案下被视为不现实。

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