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首页> 外文期刊>RSC Advances >Synthesis of poly(methyl methacrylate–methallyl alcohol) via controllable partial hydrogenation of poly(methyl methacrylate) towards high pulse energy storage capacitor application
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Synthesis of poly(methyl methacrylate–methallyl alcohol) via controllable partial hydrogenation of poly(methyl methacrylate) towards high pulse energy storage capacitor application

机译:通过对高脉冲储能电容器应用的聚(甲基丙烯酸甲酯)的可控部分氢化聚(甲基丙烯酸甲酯 - 甲醇醇)的合成

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Methallyl alcohol has never been reported to be homo-polymerized or copolymerized directly with other monomers. In this manuscript, we report the first synthesis of poly(methyl methacrylate–methallyl alcohol) (P(MMA–MAA)) copolymers via an indirect polymerization process involving the partial hydrogenation of PMMA. The copolymers with varied monomer molar ratios have been carefully characterized with nuclear magnetic resonance (NMR), differential scanning calorimetry (DSC), thermogravimetry analysis (TGA) and dynamic mechanical analysis (DMA). The introduction of –OH groups leads to the formation of H-bonds among –OH and ester groups, which is responsible for the enhanced glass transition temperature and Young's modulus. As a result, the permittivity of P(MMA–MAA) is increased at low MAA content and reduced quickly as more MAA introduced. The breakdown strength ( E _(b) ) of P(MMA–MAA)s is improved significantly from about 400 MV m ~(?1) of PMMA to over 550 MV m ~(?1) of P(MMA–MAA) bearing 19 mol% MAA units. The highest discharged energy density ( U _(e) ) is observed as 13 J cm ~(?3) at 550 MV m ~(?1) electric field which is 2–3 times larger than BOPP and 50% higher than that of PMMA. Most interestingly, energy loss ( U _(l) ) is well maintained at about 8%@550 MV m ~(?1) , which is rather close to biaxially oriented polypropylene (BOPP). The promising energy storage capability and excellent energy discharging efficiency of the P(MMA–MAA) copolymer could finally meet the desperate need in high pulse energy storage capacitors. Constructing strong H-bonds in glassy dipolar polymers might offer a great option for designing and fabricating polymeric dielectrics with high U _(e) and low U _(l) .
机译:从未据报道甲醇醇直接与其他单体直接聚合或共聚。在该稿件中,我们通过间接聚合过程报告了聚(甲基丙烯酸甲酯 - 甲醇醇醇)(P(MMA-MAA))共聚物的第一次合成,涉及PMMA的部分氢化。通过核磁共振(NMR),差示扫描量热法(DSC),热重量分析(TGA)和动态机械分析(DMA),已经仔细地表征了具有变化的单体摩尔比的共聚物。 -OH基团的引入导致在-OH和酯基中形成H键,其负责增强的玻璃化转变温度和杨氏模量。结果,在低MAA含量下P(MMA-MAA)的介电常数增加,随着更多MAA介绍,快速减少。 P(MMA-MAA)S的击穿强度(E _(B))显着从PMMA的约400mV m〜(α1)显着提高到P(MMA-MAA)的550 mV m〜(?1)中轴承19摩尔%Maa单位。在550 mV m〜(α1)电场下观察到最高排出的能量密度(U _(e))为13J厘米〜(α3),电场比BOPP大2-3倍,高于50% PMMA。最有趣的是,能量损失(U _(L))保持良好的维持在约8%@ 550 mV m〜(α1),其与双轴取向聚丙烯(BOPP)相当靠近。在高脉冲能量存储电容器中最终满足P(MMA-MAA)共聚物的有前途的能量存储能力和优异的能量放电效率。构建玻璃偶极聚合物中的强H键可以提供具有高U _(E)和低U _(L)的聚合物电介质的重要选择。

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