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首页> 外文期刊>Applied Catalysis, A. General: An International Journal Devoted to Catalytic Science and Its Applications >Catalytic coupling of epoxides and CO2 to cyclic carbonates by carbon nanotube-supported quaternary ammonium salts
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Catalytic coupling of epoxides and CO2 to cyclic carbonates by carbon nanotube-supported quaternary ammonium salts

机译:碳纳米管负载的季铵盐催化环氧化物和CO2与环状碳酸酯的催化偶联

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摘要

Quaternary ammonium chlorides bound to multi-walled carbon nanotubes as a catalyst for coupling of CO2 and epoxides to produce cyclic carbonates were explored. Reaction variables such as the epoxide structure, the length of alkyl substituents in the quaternary ammonium salts and the spacer chain on the catalytic performance were discussed. The yield of the cyclic carbonates varied between 7 and 89% after 6 h at 110 °C under low pressure (2 MPa of CO2). The epoxidexatalyst mass ratio was 20-30, while 1 mmol g~(-1) of the quaternary salt was grafted on the carbon nanotubes. A synergy between carboxyl moiety and ammonium moiety grafted on carbon nanotubes was found, and a strong impact of the length of the spacer group used for grafting of the quaternary ammonium salt on nanotubes was observed. The best performance was achieved with short (2 carbon atoms) and long (10 atoms) spacer groups, while a middle-sized spacer group (6 atoms) was not suitable. The length of the alkyl chain of the substituents of the ammonium salt (head group) had a low impact where ethyl and methyl groups performed better than butyl. The reactivity of epoxides was as follows: epichlorohydrin>propylene oxide >styrene oxide. Observations were rationalized by a mechanism where Brensted's sites on the surface of nanotubes play an important role during carboxylation of epoxides. The catalyst can easily be separated by filtration recycled without a significant decrease in the catalytic activity if dried properly between the runs.
机译:探索了结合到多壁碳纳米管上的季铵氯化物,作为将CO2和环氧化物偶联生成环状碳酸酯的催化剂。讨论了环氧化物结构,季铵盐中烷基取代基的长度和间隔链等反应变量对催化性能的影响。 110℃,低压(2 MPa的CO2)下6 h后,环状碳酸酯的收率在7%至89%之间变化。环氧催化剂的质量比为20-30,而1 mmol g〜(-1)的季盐接枝在碳纳米管上。发现了接枝到碳纳米管上的羧基部分和铵部分之间的协同作用,并且观察到用于接枝季铵盐的间隔基团的长度对纳米管的强烈影响。使用短(2个碳原子)和长(10个原子)间隔基可获得最佳性能,而中等大小的间隔基(6个原子)则不合适。铵盐(头基)取代基的烷基链长度影响很小,其中乙基和甲基的性能优于丁基。环氧化物的反应性如下:表氯醇>环氧丙烷>氧化苯乙烯。观察是通过一种机制合理化的,其中纳米管表面上的布朗斯台德位点在环氧化物的羧化过程中起着重要作用。如果在两次试验之间适当干燥,则可容易地通过循环过滤而分离催化剂,而不会显着降低催化活性。

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