Formation of acetonitrile and ethylene from activation of ethane over cobalt-exchanged aluminosilicates: Active sites and reaction pathways

Yongwoo Kim, Jieun Lee, Abiram Krishnan, Jing Luo, Xue Chen, Faisal M. Alamgir, David W. Flaherty
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Abstract

Cobalt-exchanged ZSM-5 catalyzes the ammoxidation of ethane (2 CH + 3 O + 2 NH → 2 CHCN + 6 HO), yet the active form of cobalt, the role of the Brønsted acidic zeolite, and the reaction pathways remain elusive. Comparisons of rates and selectivities of reactions at distinctive cobalt sites (Co at Al pair sites (CoZ), CoO, cobalt phyllosilicate, and cobalt aluminate) suggest sites that form from CoZ provide the greatest rates and selectivities for CHCN and CH formation. Significantly, we revealed a large fraction of CHCN appears to form directly through a trimolecular reaction at cobalt ions without desorption of intermediates. In parallel, a more conventional sequential pathway dehydrogenates CH, aminates CH, and oxidatively dehydrogenates CHNH to produce CHCN. Combined rate measurements with temperature programmed reactions and infrared spectra demonstrate that O-derived intermediates at cobalt ions initiate both reaction sequences by abstracting H-atom from CH.
乙烷在钴交换铝硅酸盐上活化生成乙腈和乙烯:活性位点和反应途径
钴交换 ZSM-5 催化了乙烷的氨氧化反应(2 CH + 3 O + 2 NH → 2 CHCN + 6 HO),但钴的活性形式、布氏酸性沸石的作用以及反应途径仍然难以确定。对不同钴位点(铝对位点上的钴(CoZ)、CoO、硅酸钴和铝酸钴)的反应速率和选择性进行比较后发现,由 CoZ 形成的位点对 CHCN 和 CH 的形成具有最大的速率和选择性。值得注意的是,我们发现很大一部分 CHCN 似乎是通过钴离子的三分子反应直接形成的,中间产物没有解吸。与此同时,一个更传统的顺序途径是脱氢 CH、胺化 CH 和氧化脱氢 CHNH,从而生成 CHCN。结合温度编程反应和红外光谱的速率测量结果表明,钴离子上的 O 衍生中间体通过从 CH 中抽取 H 原子启动了这两个反应序列。
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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