首页> 外文期刊>Journal of Applied Polymer Science >Preparation and characterization of melt-stretched polypropylene-polypropylene-g-poly(alpha-methyl styrene-co-glycidyl methacrylate-co-gamma-methacryloxypropyl trimethoxy silane)-silicon dioxide compound microporous membranes
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Preparation and characterization of melt-stretched polypropylene-polypropylene-g-poly(alpha-methyl styrene-co-glycidyl methacrylate-co-gamma-methacryloxypropyl trimethoxy silane)-silicon dioxide compound microporous membranes

机译:熔融拉伸聚丙烯 - 聚丙烯-G-聚(α-甲基苯乙烯 - 共缩水甘油酯 - 甲基丙烯酸甲基丙烯酰甲基二甲基二甲氧基硅烷的制备及表征 - 二氧化硅化合物微孔膜

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摘要

Polypropylene (PP)-silicon dioxide (SiO2) compound microporous membranes were fabricated by a melt-stretching method. Although the permeability, porosity, and hydrophilicity values of the microporous membranes were found to be highest at an SiO2 content of 2 wt %, the heat resistance of the membranes was relatively low. To improve the heat resistance of the microporous membranes, a macromolecular coupling agent, PP-g-poly(alpha-methyl styrene-co-glycidyl methacrylate-co-gamma-methacryloxypropyl trimethoxy silane) (PAGK), was introduced into the membrane. In the PP-PP-g-PAGK-SiO2 composite systems, the content of SiO2 was controlled at 2 wt %, and the proportion of PP-g-PAGK was varied. With increasing PP-g-PAGK content to 0.6%, the Gurley value decreased from 250 to 239 s, and the porosity increased from 50.8 to 51.6%. The hydrophilicity of the microporous membranes increased with the incorporation of PP-g-PAGK, and their water vapor transmission rate reached a maximum of 3360 g m(-2)/24 h at a PP-g-PAGK content of 0.6%. The heat resistance of the PP-PP-g-PAGK-SiO2 compound microporous membranes was slightly higher than that of the pure PP microporous membrane. Additionally, the cycle performance of a cell assembled with the PP-PP-g-PAGK-SiO2 membrane was better than that constructed with the pure PP membrane. (c) 2019 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2019, 136, 47937.
机译:聚丙烯(PP) - 硅二氧化硅(SiO 2)化合物的微孔膜是由熔融拉伸法制造。虽然发现本渗透率,孔隙度,和亲水性的微孔膜的值是在2重量%的SiO 2含量最高,膜的耐热性相对较低。为了提高微孔膜的耐热性,高分子偶联剂,PP-G - 聚(α-甲基苯乙烯 - 共 - 甲基丙烯酸缩水甘油酯 - 共 - γ-甲基丙烯酰丙基三甲氧基硅烷)(PAGK),被引入到膜中。在PP-PP-G-PAGK-SiO2复合系统,SiO 2的含量在2%(重量)被控制,和PP-G-PAGK的比例是变化的。与PP-G-PAGK含量增加至0.6%,Gurley值从250到239小号下降,孔隙率从50.8提高到51.6%。微孔膜的亲水性与PP-G-PAGK掺入增加,并且它们的水蒸汽传输速率在0.6%的PP-G-PAGK含量最多3360克间(-2)/ 24小时达到。的PP-PP-G-PAGK-的SiO 2化合物的微孔膜的耐热性明显高于纯PP微孔膜的略高。此外,与PP-PP-G-PAGK-的SiO 2膜组装电池的循环性能比与纯PP膜构成更好。 (c)2019 Wiley期刊,Inc.J.Phill。聚合物。 SCI。 2019年,136,47937。

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