膜反应器
催化作用
甲醇
蒸汽重整
化学
化学工程
膜
脱氢
选择性
傅里叶变换红外光谱
动能
动力学
产物抑制
工作(物理)
化学动力学
多相催化
材料科学
微型反应器
分子筛
化学平衡
合成气
原位
红外光谱学
反应速率
推流式反应器模型
作者
Haoyuan Gu,Linlin Wang,Linfeng Lei,Minghui Zhu,Zhi Xu
摘要
Abstract Membrane reactors (MRs) are widely recognized for enhancing thermodynamically limited reactions by continuously removing a product. However, how such in situ selective separation directly impacts intrinsic reaction kinetics and mechanisms has remained ambiguous and lacks direct spectroscopic evidence. Here, we address this fundamental question using a MR integrating a commercial Cu/ZnO/Al 2 O 3 catalyst with carbon molecular sieve (CMS) membranes for methanol steam reforming. The CMS membrane‐based MR exhibits a remarkable one‐fold enhancement in methanol conversion over a conventional reactor at 180°C, while simultaneously reducing CO selectivity by 61.3%. Crucially, in situ Fourier Transform Infrared Spectroscopy provides direct evidence that this enhancement stems from a profound kinetic acceleration of the rate‐determining methoxy dehydrogenation step. This acceleration is driven by efficient removal of H 2 , which alleviates product inhibition on the catalyst's active sites. This work elucidates a powerful kinetic promotion mechanism, shifting the paradigm of membrane catalysis beyond its thermodynamic role.
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