催化作用
化学
甲醇
离解(化学)
反应中间体
同位素标记
光化学
漫反射红外傅里叶变换
吸附剂
甲烷化
甲烷
无机化学
傅里叶变换红外光谱
碳酸二甲酯
多相催化
红外光谱学
反应机理
合成气
碳酸盐
吸附
二氧化碳
反应速率
催化循环
速率决定步骤
化学工程
氧气
水煤气变换反应
一氧化碳
作者
Laura Proaño,Jordan Wielang,Christopher W. Jones
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2025-12-31
卷期号:16 (2): 1249-1263
标识
DOI:10.1021/acscatal.5c06895
摘要
Reactive capture and conversion (RCC) is a process intensification approach that integrates CO2 capture and hydrogenation within a single unit, removing the CO2 purification and storage steps of traditional process flow schemes. This alters the catalytic step from a traditional steady-state (SS) flow process to a transient capture and conversion cycle, which could lead to product distributions distinct from those observed in conventional SS experiments. Such differences are investigated in the combined capture and hydrogenation of carbon dioxide to methanol over a ZnZrO2 catalyst and a ZnZrO2 + NaNO3/Mg3AlO x catalytic sorbent (CS) using fixed-bed kinetic measurements, in situ diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS), and steady-state isotopic transient kinetic analysis-DRIFTS (SSITKA-DRIFTS). Under SS conditions, ZnZrO2 produced methanol through sequential hydrogenation of HCOO* and CH3O* intermediates. On the contrary, CO was attributed primarily to CO2 dissociation at oxygen vacancies, as supported by isotopic shifts and measured reaction orders. For the CS, isotopic switching experiments suggested that monodentate carbonate species (CO3 2-, abbreviated as m-CO3 2-) act as active intermediates that can be hydrogenated to HCOO* and subsequently to CH3O. Under RCC conditions, in situ DRIFTS and isotopic experiments reveal that m-CO3 2- species formed during the CO2 capture step follow two competing routes upon H2 exposure: (i) direct hydrogenation to methane on the sorbent domain or (ii) migration of m-CO3 2- to the ZnZrO2 domain, where they are hydrogenated to methanol through the HCOO pathway. Overall, RCC enables carbonate hydrogenation routes not observed under SS cofeed conditions. Thus, the reaction pathways and rates during RCC can be different from operation under conventional SS conditions, and the product distribution is determined here by competition between carbonate hydrogenation on sorbent sites and migration to ZnZrO2 for methanol synthesis.
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