Selectivity control by zeolites during methanol-mediated CO2 hydrogenation processes

IF 40.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Chemical Society Reviews Pub Date : 2025-01-17 DOI:10.1039/d4cs01042f
Tangkang Liu, Zhiyao Liu, Shican Jiang, Peng Peng, Zhiqiang Liu, Abhishek Dutta Chowdhury, Guoliang Liu
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Abstract

The thermocatalytic conversion of CO2 with green or blue hydrogen into valuable energy and commodity chemicals such as alcohols, olefins, and aromatics emerges as one of the most promising strategies for mitigating global warming concerns in the future. This process can follow either a CO2-modified Fischer–Tropsch synthesis route or a methanol-mediated route, with the latter being favored for its high product selectivity beyond the Anderson–Schulz–Flory distribution. Despite the progress of the CO2-led methanol-mediated route over bifunctional metal/zeolite catalysts, challenges persist in developing catalysts with both high activity and selectivity due to the complexity of CO2 hydrogenation reaction networks and the difficulty in controlling C–O bond activation and C–C bond coupling on multiple active sites within zeolites. Moreover, the different construction and proximity modes of bifunctionality involving redox-based metallic sites and acidic zeolite sites have been explored, which have not been systematically reviewed to derive reliable structure–reactivity relationships. To bridge this “knowledge gap”, in this review, we will provide a comprehensive and critical overview of contemporary research on zeolite-confined metal catalysts for alcohol synthesis and zeolite-based bifunctional tandem/cascade catalytic systems for C2+ hydrocarbons synthesis in CO2 hydrogenation via the methanol-mediated route. Accordingly, special emphasis will be placed on evaluating how confinement and proximity effects within the “redox-acid” bifunctional systems influence the reaction outcomes, particularly regarding product selectivity, which has also been analyzed from the mechanistic standpoint. This review will also examine the synergistic interactions among various catalyst components that govern catalysis, offering valuable insights for the rational design of new or improved catalyst systems. By discussing current challenges and recognizing future opportunities in CO2 hydrogenation using zeolite-based bifunctional catalysis, this review aims to contribute to the advancement of sustainable and efficient processes for CO2 valorization.

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甲醇介导的CO2加氢过程中沸石的选择性控制
二氧化碳与绿色或蓝色氢的热催化转化为有价值的能源和商品化学品,如醇、烯烃和芳烃,是未来缓解全球变暖担忧的最有前途的策略之一。该过程可以遵循co2修饰的费托合成路线或甲醇介导的路线,后者因其高产物选择性而受到青睐,超出了Anderson-Schulz-Flory分布。尽管二氧化碳主导的甲醇介导途径在双功能金属/沸石催化剂上取得了进展,但由于二氧化碳加氢反应网络的复杂性以及沸石中多个活性位点上C-O键活化和C-C键偶联的控制困难,开发具有高活性和选择性的催化剂仍然存在挑战。此外,涉及氧化还原基金属位点和酸性沸石位点的双官能团的不同结构和邻近模式已经被探索,但尚未系统地回顾以获得可靠的结构-反应性关系。为了弥补这一“知识差距”,在这篇综述中,我们将全面和批判性地概述当前研究的沸石限制的金属催化剂用于酒精合成和沸石为基础的双功能串联/级联催化系统的C2+碳氢化合物在CO2加氢中通过甲醇介导的途径合成。因此,将特别强调评估“氧化还原-酸”双功能体系中的限制和邻近效应如何影响反应结果,特别是关于产物选择性,这也从机理的角度进行了分析。本综述还将研究控制催化的各种催化剂组分之间的协同相互作用,为合理设计新的或改进的催化剂体系提供有价值的见解。通过讨论当前的挑战,并认识到未来的机遇,利用沸石为基础的双功能催化CO2加氢,旨在促进可持续和高效的CO2增值过程的进步。
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来源期刊
Chemical Society Reviews
Chemical Society Reviews 化学-化学综合
CiteScore
80.80
自引率
1.10%
发文量
345
审稿时长
6.0 months
期刊介绍: Chemical Society Reviews is published by: Royal Society of Chemistry. Focus: Review articles on topics of current interest in chemistry; Predecessors: Quarterly Reviews, Chemical Society (1947–1971); Current title: Since 1971; Impact factor: 60.615 (2021); Themed issues: Occasional themed issues on new and emerging areas of research in the chemical sciences
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