Modulation of inter-elemental synergy and oxygen vacancy content of CdZrOx solid solution catalysts by Ga for effective CO2 hydrogenation to methanol

IF 9 1区 工程技术 Q1 ENGINEERING, CHEMICAL Separation and Purification Technology Pub Date : 2025-06-22 Epub Date: 2024-11-29 DOI:10.1016/j.seppur.2024.130834
Yu Zhou , Ke Zhuang , Kai Shen , Yun Xu , Sheng Wang , Yaping Zhang
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Abstract

CO2 conversion into valuable chemical products such as methanol using green hydrogen generated from renewable energy sources is an effective way to reduce CO2 emissions. However, preparing catalysts with high activity and methanol yield remains a significant challenge. Here, we found that the synergistic effect of Ga, Cd and Zr produced by introducing Ga into CdZrOx solid solution catalysts significantly facilitated the methanol synthesis from CO2 hydrogenation. The Ga-promoted CdZrOx solid solution catalyst (5 %GaCdZrOx) exhibited a CO2 conversion of 8.6 % and a methanol space time yield of 457 mg/gcat·h, which is remarkably higher than the unmodified CdZrOx, and displayed excellent long-term stability. Multiple characterization results indicate that Ga acts as a promoter, leading to changes in the electronic structure of the CdZrOx solid solution, which generates a large number of oxygen vacancies on the catalyst surface, and thus promotes the methanol generation. A series of chemisorption experiments and in situ DRIFTS revealed that the Ga, Cd and Zr components in the 5 %GaCdZrOx solid solution catalyst exhibited a stronger synergistic effect with enhanced CO2 and H2 adsorption and activation compared to CdZrOx. Both the strengthened synergistic effect of the solid solution structure and the elevated oxygen vacancies promoted the adsorption of CO2 and the formation of more CO3* species, while increased H2 adsorption and activation capacity further accelerated the hydrogenation of CO3* species into HCOO* and CH3O* species. This study provides specific insights into the modification of solid solution catalysts with bimetallic oxide components for the CO2 hydrogenation.

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Ga对CdZrOx固溶体催化剂元素间协同作用及氧空位含量的调节作用
利用可再生能源产生的绿色氢将二氧化碳转化为甲醇等有价值的化学产品是减少二氧化碳排放的有效途径。然而,制备高活性和甲醇产率的催化剂仍然是一个重大挑战。本研究发现,在CdZrOx固溶体催化剂中引入Ga所产生的Ga、Cd和Zr的协同效应显著促进了CO2加氢合成甲醇。GaCdZrOx固溶体催化剂(5 %)的CO2转化率为8.6% %,甲醇时空产率为457 mg/gcat·h,显著高于未改性的CdZrOx,且具有良好的长期稳定性。多重表征结果表明,Ga作为促进剂,导致CdZrOx固溶体的电子结构发生变化,在催化剂表面产生大量的氧空位,从而促进甲醇的生成。一系列化学吸附实验和原位漂移实验表明,与CdZrOx相比,5 %GaCdZrOx固溶体催化剂中Ga、Cd和Zr组分表现出更强的协同作用,增强了CO2和H2的吸附和活化。固溶结构协同作用的增强和氧空位的增加都促进了CO2的吸附和更多CO3*的形成,而H2吸附和活化能力的增加进一步加速了CO3*加氢成HCOO*和ch30 *的过程。本研究为双金属氧化物组分固溶体催化剂的CO2加氢改性提供了具体的见解。
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来源期刊
Separation and Purification Technology
Separation and Purification Technology 工程技术-工程:化工
CiteScore
14.00
自引率
12.80%
发文量
2347
审稿时长
43 days
期刊介绍: Separation and Purification Technology is a premier journal committed to sharing innovative methods for separation and purification in chemical and environmental engineering, encompassing both homogeneous solutions and heterogeneous mixtures. Our scope includes the separation and/or purification of liquids, vapors, and gases, as well as carbon capture and separation techniques. However, it's important to note that methods solely intended for analytical purposes are not within the scope of the journal. Additionally, disciplines such as soil science, polymer science, and metallurgy fall outside the purview of Separation and Purification Technology. Join us in advancing the field of separation and purification methods for sustainable solutions in chemical and environmental engineering.
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