甲醇
格式化
化学
催化作用
吸附
产量(工程)
离解(化学)
选择性
无机化学
催化加氢
核化学
甲醇重整装置
合成气
甲酸甲酯
多相催化
活动站点
有机化学
药物化学
蒸汽重整
一氧化碳
作者
Shixiong Tang,Maoshuai Li,Pengju Gao,Xiao-yu Han,Jiyi Chen,Ziwen Hao,Zhenmei Zhang,Wenyan Jia,Ming-can Chen,Shengyu Wang,Yurou Bai,Zhen Yu,Yue Wang,Xinbin Ma
摘要
Abstract Efficient conversion of CO 2 and CO is pivotal for CO 2 hydrogenation to methanol given the synthesis loop recycle generally employed in practice. However, competitive adsorption of CO and CO 2 at active sites reduces methanol production. In this study, multi‐functional active sites were constructed over Ga 2 O 3 ‐modified Cu/ZnO/Al 2 O 3 (CuZnAlGa) for synergistic hydrogenation of CO 2 and CO to methanol. Incorporating the Ga 2 O 3 promoter effectively dispersed Cu particles, formulated extra Cu‐Ga sites active for CO 2 adsorption and Ga sites for H 2 dissociation (Ga‐H), enhancing H 2 and CO 2 activation as well as promoting non‐competitive CO 2 /CO adsorption. Under 240°C, 5 MPa, and 6000 mL g cat −1 h −1 , the CuZnAlGa catalyst achieved a methanol space–time yield of 517 g kg cat −1 h −1 with excellent stability, outperforming the commercial methanol synthesis catalysts. The formate pathway, involving formate and methoxy as critical intermediates, is the predominant route for methanol formation. The Ga 2 O 3 promoter accelerates formate formation and further hydrogenation to methoxy.
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