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Impact of Molecular Architectures on the Thermal and Mechanical Properties of Multi-Phase Polymer Networks

机译:分子结构对多相聚合物网络热力学性能的影响

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Multiphase copolymer networks (CLEG) composed of crystallizable poly(ε-caprolactone) (PCL) and crystallizable poly(ethylene glycol) (PEG) segments can exhibit a pronounced triple-shape effect in the dry state or a dual-shape effect in the water swollen, hydrogel state. We hypothesize that by adjusting the network architecture of CLEG copolymers networks the swelling behavior, the thermal and mechanical properties, as well as the crystal structure of PEG and PCL domains can be tailored. Here, we studied CLEG materials with a fixed PCL/PEG weight ratio but different polymer network architectures, whereby the PEG segments were incorporated as grafted side chains or as network chains connecting two netpoints. The prepared CLEGs were analyzed regarding their gel contents, swelling behavior, thermal and mechanical properties and finally the crystallinity of the polymer networks were determined by differential scanning calorimetry (DSC) and wide angle X-ray scattering (WAXS) measurements. High gel content values of G ≥98% were achieved for all copolymer network samples, indicating an almost complete conversion of the reaction precursors. The degree of swelling (Q) determined with water increased from Q ≈ 150% to 223% with increasing poly(ethylene glycol) monomethyl monomethacrylate (PEGMMA) content to create more PEG grafted side chains. Only when PEGMMA moieties were present in the CLEG networks two separated melting transitions related to the PCL and PEG segments were obtained, whereby Tm,PEG was found to increase with increasing the PEGMMA weight fraction. Based on this observation it can be assumed that the incorporated poly(ecaprolactone) diisocyanoethyl methacrylate PEGDIMA segments forming the main network were not able to form crystallites in CLEG networks. An almost two-fold decrease in the Young's modulus was observed with increasing amounts of grafted PEG side chains, while the elongation at break increased significantly. Based on Mooney-Rivlin Equations, the crosslinking density increased from 0.10% to 0.21% when PEG segments switched from grafted chains to the network. WAXS and DSC investigations revealed an increase in the degree of crystallinity (DOC) of PEG segments with increasing PEGMMA moieties, while the DOC related to the crystalline PCL domains remained almost constant. The obtained results clearly demonstrated the importance of the molecular architecture in designing polymer networks.
机译:由可结晶的聚(ε-己内酯)(PCL)和可结晶的聚(乙二醇)(PEG)链段组成的多相共聚物网络(CLEG)在干燥状态下可表现出明显的三重效应,而在水中则可表现出双重效应肿胀,水凝胶状态。我们假设通过调整CLEG共聚物的网络结构,可以调整溶胀行为,热和机械性能以及PEG和PCL域的晶体结构。在这里,我们研究了具有固定PCL / PEG重量比但聚合物网络结构不同的CLEG材料,其中PEG段以接枝侧链或连接两个网点的网络链的形式引入。分析所制备的CLEG的凝胶含量,溶胀行为,热和机械性能,最后通过差示扫描量热法(DSC)和广角X射线散射(WAXS)测量来确定聚合物网络的结晶度。对于所有共聚物网络样品,均达到了G≥98%的高凝胶含量值,表明反应前体几乎完全转化。随着聚(乙二醇)单甲基丙烯酸甲酯(PEGMMA)含量的增加,水溶胀度(Q)从Q≈150%增加到223%,以产生更多的PEG接枝侧链。仅当在CLEG网络中存在PEGMMA部分时,才获得与PCL和PEG链段相关的两个分开的熔融转变,由此发现Tm,PEG随着PEGMMA重量分数的增加而增加。基于该观察,可以假定形成主网络的掺入的聚(己内酯)二异氰基乙基甲基丙烯酸甲酯PEGDIMA链段不能在CLEG网络中形成微晶。随着接枝的PEG侧链数量的增加,杨氏模量几乎降低了两倍,而断裂伸长率则显着增加。根据Mooney-Rivlin方程,当PEG链段从接枝链转变为网络时,交联密度从0.10%增加到0.21%。 WAXS和DSC研究表明,PEG片段的结晶度(DOC)随着PEGMMA部分的增加而增加,而与结晶PCL域相关的DOC几乎保持恒定。获得的结果清楚地证明了分子结构在设计聚合物网络中的重要性。

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