Deciphering reaction mechanism network of n-heptane dehydrocyclization over H-ZSM-5 zeolite

IF 6.5 1区 化学 Q2 CHEMISTRY, PHYSICAL Journal of Catalysis Pub Date : 2024-06-26 DOI:10.1016/j.jcat.2024.115623
Guangyuan He , Donghai Mei
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Abstract

The dehydrocyclization of naphtha is a process of great significance in the petrochemical industry, as it enables the production of valuable aromatics. While experimental studies have demonstrated the catalytic activity of H-ZSM-5 zeolite in converting alkanes to aromatics, there is a notable absence of theoretical investigations into the reaction mechanisms involved in the dehydrocyclization of naphtha. Herein, the conversion of n-heptane to toluene over H-ZSM-5 zeolite was examined using first-principles density functional theory (DFT) calculations. The dehydrocyclization process of n-heptane involves several key steps, including dehydrogenation, isomerization, and cyclization. Specifically, the dehydrogenation of n-heptane produces 1-heptene, 2-heptene, and 3-heptene, which then undergo various dehydrocyclization pathways leading to the formation of toluene: (i) C1-C5 ring closure of 1-heptene; (ii) C1-C6 ring closure of 1-heptene; (iii) C2-C6 ring closure of 2-heptene; (iv) dehydrogenation of 3-heptene to heptadiene, with C1-C5 ring closure; and (v) dehydrogenation of 3-heptene to heptatriene, with C1-C6 ring closure, followed by sequential ring expansion and/or dehydrogenation to toluene. The DFT results indicate that the dehydrogenation steps are energetically demanding, with the conversion of n-heptane to toluene via 1-heptene identified as the most favorable cyclization route. This theoretical investigation provides valuable insights into the fundamental mechanisms underlying the dehydrocyclization of naphtha for the production of aromatics, with potential implications for the development of more efficient catalytic processes in the petrochemical industry.

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解密正庚烷在 H-ZSM-5 沸石上脱氢环化的反应机理网络
石脑油的脱氢环化是石化工业中一个非常重要的过程,因为它可以生产出有价值的芳烃。虽然实验研究已经证明了 H-ZSM-5 沸石在将烷烃转化为芳烃方面的催化活性,但对石脑油脱氢环化反应机理的理论研究却明显不足。在此,我们利用第一原理密度泛函理论(DFT)计算研究了正庚烷在 H-ZSM-5 沸石上转化为甲苯的过程。正庚烷的脱氢环化过程涉及几个关键步骤,包括脱氢、异构化和环化。具体来说,正庚烷脱氢生成 1-庚烯、2-庚烯和 3-庚烯,然后经过各种脱氢环化途径形成甲苯:(i) 1-庚烯的 C1-C5 环闭合;(ii) 1-庚烯的 C1-C6 环闭合;(iii) 2-庚烯的 C2-C6 环闭合;(iv) 3-庚烯脱氢生成庚二烯,C1-C5 环闭合;以及 (v) 3-庚烯脱氢生成庚三烯,C1-C6 环闭合,然后依次扩环和/或脱氢生成甲苯。DFT 结果表明,脱氢步骤对能量的要求很高,通过 1- 庚烯将正庚烷转化为甲苯是最有利的环化途径。这项理论研究对石脑油脱氢环化生产芳烃的基本机制提供了宝贵的见解,对石化工业开发更高效的催化过程具有潜在的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Catalysis
Journal of Catalysis 工程技术-工程:化工
CiteScore
12.30
自引率
5.50%
发文量
447
审稿时长
31 days
期刊介绍: The Journal of Catalysis publishes scholarly articles on both heterogeneous and homogeneous catalysis, covering a wide range of chemical transformations. These include various types of catalysis, such as those mediated by photons, plasmons, and electrons. The focus of the studies is to understand the relationship between catalytic function and the underlying chemical properties of surfaces and metal complexes. The articles in the journal offer innovative concepts and explore the synthesis and kinetics of inorganic solids and homogeneous complexes. Furthermore, they discuss spectroscopic techniques for characterizing catalysts, investigate the interaction of probes and reacting species with catalysts, and employ theoretical methods. The research presented in the journal should have direct relevance to the field of catalytic processes, addressing either fundamental aspects or applications of catalysis.
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