Assessing the effects of dealumination and bifunctionalization on 8-membered ring zeolite/zeo-type materials in the methanol-to-olefin catalytic process†

IF 4.4 3区 化学 Q2 CHEMISTRY, PHYSICAL Catalysis Science & Technology Pub Date : 2024-06-17 DOI:10.1039/d4cy00110a
Shican Jiang , Hexun Zhou , Xin Zhang , Xue Zhou , Abhishek Dutta Chowdhury
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Abstract

C2–C4 shorter olefins, particularly ethylene and propylene, are crucial building blocks in modern petrochemical, polymer, and chemical industries. However, their predominant sourcing from fossil resources raises concerns due to increased awareness of carbon emissions and diminishing petroleum reserves. Therefore, a necessary shift towards sustainable resources is underway. The zeolite-catalyzed methanol-to-olefin (MTO) process, particularly over 8-MR zeolite/zeo-type materials, has gained industrial prominence in this context. If methanol strictly originated from renewable sources, then the MTO process would actively promote the “methanol economy”. Despite the advantages of zeolite/zeo-type materials, they encounter deactivation due to the accumulation of coke precursors, limiting their lifetime. While achieving high olefin selectivity in the MTO process is not challenging, improving the catalytic lifetime without compromising preferential olefin selectivity is crucial. To achieve this objective, various surface modification approaches, such as dealumination through acid etching, steaming, and constructing bifunctional catalytic systems, are applied to numerous 8-MR zeolite/zeo-type materials, including industrially operational MTO catalysts. Combining catalytic studies with advanced characterization methods, including under operando conditions, has enhanced MTO process efficiency by mitigating the formation of coke precursors. Ultimately, this study contributes to a deeper understanding of zeolite-catalyzed MTO processes, paving the way for more efficient and sustainable production of low-carbon olefins.

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评估 8 元环沸石/沸石型材料在甲醇制烯烃催化过程中的脱胶和双官能化效应
C2-C4 短烯烃,尤其是乙烯和丙烯,是现代石化、聚合物和化学工业的重要组成部分。然而,由于人们对碳排放和石油储量日益减少的认识不断提高,它们主要来自化石资源的问题引起了人们的关注。因此,必须向可持续资源转变。在此背景下,沸石催化的甲醇制烯烃(MTO)工艺,特别是使用 8-MR 沸石/沸石型材料的工艺,已在工业领域占据重要地位。如果甲醇严格来源于可再生资源,那么 MTO 工艺将积极推动 "甲醇经济 "的发展。尽管沸石/沸石型材料具有诸多优点,但由于焦炭前体的积累,它们会出现失活现象,从而限制了其使用寿命。虽然在 MTO 工艺中实现高烯烃选择性并非难事,但在不影响优先烯烃选择性的前提下提高催化寿命至关重要。为了实现这一目标,各种表面改性方法,如通过酸蚀刻进行脱铝、蒸煮和构建双功能催化系统等,都被应用到了许多 8-MR 沸石/沸石型材料上,包括工业上使用的 MTO 催化剂。将催化研究与先进的表征方法(包括在操作条件下)相结合,通过减少焦炭前体的形成,提高了 MTO 工艺的效率。最终,这项研究有助于加深对沸石催化 MTO 工艺的理解,为更高效、更可持续地生产低碳烯烃铺平道路。
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来源期刊
Catalysis Science & Technology
Catalysis Science & Technology CHEMISTRY, PHYSICAL-
CiteScore
8.70
自引率
6.00%
发文量
587
审稿时长
1.5 months
期刊介绍: A multidisciplinary journal focusing on cutting edge research across all fundamental science and technological aspects of catalysis. Editor-in-chief: Bert Weckhuysen Impact factor: 5.0 Time to first decision (peer reviewed only): 31 days
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