结构沸石二氧化碳加氢性能的最新发展:性能、合成和表征综述

Catalysts Pub Date : 2024-05-17 DOI:10.3390/catal14050328
Methene Briones Cutad, Mohammed J. Al-Marri, Anand Kumar
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引用次数: 0

摘要

本综述重点概述了结构沸石在二氧化碳加氢方面的最新进展,包括其特性、合成方法和表征。文章探讨了双峰介孔结构、表面氧空位和硅/铝比例等关键特征在提高催化活性方面的作用。此外,还详细讨论了孔隙率、热稳定性和结构完整性对沸石性能的影响,以及它们与电和等离子环境的相互作用。通过比较自下而上的方法(包括硬模板、软模板和非模板方法)与自上而下的方法(如脱胶、脱硅和重结晶)的优势和局限性,分析了结构沸石的合成。综述探讨了与这些合成技术相关的挑战,如孔隙引起的扩散限制、形态限制和保持晶体完整性,强调了对创新解决方案和优化策略的需求。研究强调,先进的表征技术对于了解沸石的催化机理和动态行为至关重要,从而有助于进一步研究如何高效利用沸石。研究最后强调了继续研究改进合成和表征方法的重要性,这对于优化二氧化碳加氢的催化活性至关重要。这项工作对于实现选择性催化非常重要,对于减少碳排放和应对气候变化的全球倡议也至关重要。
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Recent Developments on CO2 Hydrogenation Performance over Structured Zeolites: A Review on Properties, Synthesis, and Characterization
This review focuses on an extensive synopsis of the recent improvements in CO2 hydrogenation over structured zeolites, including their properties, synthesis methods, and characterization. Key features such as bimodal mesoporous structures, surface oxygen vacancies, and the Si/Al ratio are explored for their roles in enhancing catalytic activity. Additionally, the impact of porosity, thermal stability, and structural integrity on the performance of zeolites, as well as their interactions with electrical and plasma environments, are discussed in detail. The synthesis of structured zeolites is analyzed by comparing the advantages and limitations of bottom-up methods, including hard templating, soft templating, and non-templating approaches, to top-down methods, such as dealumination, desilication, and recrystallization. The review addresses the challenges associated with these synthesis techniques, such as pore-induced diffusion limitations, morphological constraints, and maintaining crystal integrity, highlighting the need for innovative solutions and optimization strategies. Advanced characterization techniques are emphasized as essential for understanding the catalytic mechanisms and dynamic behaviors of zeolites, thereby facilitating further research into their efficient and effective use. The study concludes by underscoring the importance of continued research to refine synthesis and characterization methods, which is crucial for optimizing catalytic activity in CO2 hydrogenation. This effort is important for achieving selective catalysis and is paramount to the global initiative to reduce carbon emissions and address climate change.
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