甲醇
化学
催化循环
烯烃
催化作用
反应机理
脱质子化
反应性(心理学)
环戊二烯
背景(考古学)
反应中间体
光化学
有机化学
计算化学
医学
离子
古生物学
替代医学
病理
生物
作者
Wenna Zhang,Yuchun Zhi,Jindou Huang,Xinqiang Wu,Shu Zeng,Shutao Xu,Anmin Zheng,Yingxu Wei,Zhongmin Liu
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2019-07-16
卷期号:9 (8): 7373-7379
被引量:74
标识
DOI:10.1021/acscatal.9b02487
摘要
Starting from C1 raw material, methanol conversion to hydrocarbons has been realized via a rather complicated pathway. In this contribution, we proposed an alternative methanol reaction route and provided a general understanding of such complex indirect mechanism. The methylcyclopentenyl cations and their deprotonated counterparts (methylcyclopentadienes) were validated to appear on the working H-SAPO-34 catalyst by in situ 13C MAS NMR spectroscopy and the GC-MS technique, and their catalytic reactivity was revealed by the 12C/13C–CH3OH isotopic switch experiment. In this context, a cyclopentadienes-based cycle was established, in which light olefins were formed with methylcyclopentadienes as critical intermediates. The feasibility of this alternative route was confirmed by density functional theory calculations. Notably, the cyclopentadienes-based cycle runs in parallel with the traditional alkenes-based and aromatics-based cycles; these three mechanistic cycles are interrelated through interconversion of the involved intermediates, including alkene, cyclopentadiene, and aromatic species. All these three cycles work together for the C–C bond assembly in the methanol-to-olefins reaction system. These findings help to build a more complete methanol conversion network and advance the in-depth understanding of indirect mechanism of methanol conversion.
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