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首页> 外文期刊>Macromolecules >Carbon Dioxide/Epoxide Copolymerization via a Nanosized Zinc-Cobalt(III) Double Metal Cyanide Complex: Substituent Effects of Epoxides on Polycarbonate Selectivity, Regioselectivity and Glass Transition Temperatures
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Carbon Dioxide/Epoxide Copolymerization via a Nanosized Zinc-Cobalt(III) Double Metal Cyanide Complex: Substituent Effects of Epoxides on Polycarbonate Selectivity, Regioselectivity and Glass Transition Temperatures

机译:通过纳米锌-钴(III)双金属氰化物配合物的二氧化碳/环氧共聚:环氧化合物对聚碳酸酯选择性,区域选择性和玻璃化转变温度的取代作用

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In this study, we describe the substituent effect of epoxides on CO2/epoxide copolymerization catalyzed by a nanosized zinccobalt(III) double metal cyanide complex [ZnCo(III) DMCC]. The ZnCo(III) DMCC catalyzed the copolymerization of CO2 with 11 epoxides with alkyl or aryl groups at 50-60 circle C within 15 h. The reaction afforded various CO2/epoxide copolymers with high epoxide conversion efficiencies up to 100%. The alternating degree (FCO2) of the resulting copolymer was solely decided by the steric hindrance of the substituents of the epoxides regardless of their electron-donating or withdrawing properties. Substituents with large steric hindrances (2, 2-dimethyl, tert-butyl, cyclohexyl, decyl, and benzyl) led to highly alternating degrees (up to 100%). The regioselective CO2/epoxide copolymerization was dominated by the electron induction effect of the substituent. The electron-withdrawing substituent such as phenyl and benzyl induced regioselective ring-opening at the methine site of the epoxide. For CO2/isobutene oxide copolymerization, the regioselective reaction occurred at the methylene site of the isobutene oxide because of the strong electron-donating ability and steric hindrance of the two methyls of the isobutene oxide. The linear alkyl groups of the epoxides could not induce the regioselective reaction during copolymerization. The glass transition temperatures (Tgs) of the CO2/epoxide copolymers with linear alkyl substituent groups decreased from +6 to -38 degrees C with increasing alkyl length, but increased from 6 to 84 degrees C with increasing steric hindrance of the epoxide substituents. Thus, various CO2/epoxide copolymers with a wide Tg range from -38 to +84 degrees C were provided and could be applied as elastomers or plastics.
机译:在这项研究中,我们描述了由纳米尺寸的锌钴(III)双金属氰化物配合物[ZnCo(III)DMCC]催化的环氧化物对CO2 /环氧共聚的取代作用。 ZnCo(III)DMCC在15小时内在50-60圈的温度下催化CO2与11个具有烷基或芳基的环氧化物的共聚。该反应提供了具有高达100%的高环氧转化效率的各种CO 2 /环氧共聚物。所得共聚物的交替度(FCO 2)仅取决于环氧化物的取代基的空间位阻,而与它们的给电子或吸电子性质无关。具有大的空间位阻的取代基(2、2-二甲基,叔丁基,环己基,癸基和苄基)导致高度交替的程度(最高100%)。区域选择性CO 2 /环氧共聚主要由取代基的电子感应作用决定。吸电子取代基,例如苯基和苄基,在环氧基的次甲基位置上引起区域选择性的开环。对于CO 2 /异丁烯氧化物的共聚,由于异丁烯氧化物的两个甲基的强供电子能力和位阻,所以在异丁烯氧化物的亚甲基位发生区域选择性反应。环氧化物的直链烷基不能在共聚过程中引起区域选择性反应。具有直链烷基取代基的CO2 /环氧共聚物的玻璃化转变温度(Tgs)随着烷基长度的增加从+6降低至-38℃,但随着环氧化物取代基的空间位阻的增加而从6升高至84℃。因此,提供了具有从-38到+ 84℃的宽Tg范围的各种CO 2 /环氧共聚物,并且可以用作弹性体或塑料。

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