甲醇
催化作用
材料科学
离解(化学)
吸附
化学工程
等温过程
电子效应
色散(光学)
空间速度
密度泛函理论
电子结构
无机化学
兴奋剂
多相催化
光化学
物理化学
合成气
作者
Kaixin Wang,Shanshan Dang,Qi Tong,Peng Gao,Xiaolu Ni,Zhenzhou Zhang,Weifeng Tu
标识
DOI:10.1021/acscatal.6c06780
摘要
Abstract Although industrial Cu/ZnO/Al2O3 catalysts are highly promising for methanol synthesis from CO2 hydrogenation, identifying the nature of the surface active structure and establishing a quantitative structure-activity relationship remain elusive. Herein, through integrated qualitative, titration, and isothermal adsorption characterizations, we elucidate how Zr species promotion tailors the electronic and structural properties of Cu/ZnOx interfacial sites—the primary active sites. A substantial methanol STY of 0.813 g gcat–1 h–1 is achieved over the Cu/ZnO/Al2O3-2Zr catalyst at 503 K and 3 MPa with an H2/CO2 ratio of 4 and a GHSV of 40,000 mL gcat–1 h–1, a 23.9% leap over the pristine benchmark. Mechanistically, a linear dependence of CO2 conversion on the density of Cu/ZnOx interfacial sites is established, which originates from the improved dispersion of both ZnO and Cu induced by moderate ZrO2 incorporation. Electronic analyses reveal that Zr species acts as an electron donor to ZnOx, enriching its electron density. This electronic modulation facilitates H2 dissociation and the surface Zn-H-Zn species formation even at low temperature, selectively driving the intermediate hydrogenation to methanol. In situ spectroscopies identify a sequential HCOO* → CH3O* hydrogenation pathway for methanol synthesis. Ultimately, this work establishes a definitive quantitative structure-activity relationship, paving a clear path for designing advanced industrial methanol catalysts.
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