Soft template-induced deep pore structure of Cu/Al2O3 for promoting plasma-catalyzed CO2 hydrogenation to DME

IF 10.8 2区 化学 Q1 CHEMISTRY, PHYSICAL
Liuyun Chen , Wenju Wang , Tairong Lu , Xuan Luo , Xinling Xie , Kelin Huang , Shanli Qin , Tongming Su , Zuzeng Qin , Hongbing Ji
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引用次数: 0

Abstract

Plasma-activated heterogeneous catalysis is a promising strategy for catalytic CO2 hydrogenation under mild conditions. In this study, pore structures with deep pore channels were constructed on Al2O3-x via a soft template method, and Cu/Al2O3-x was prepared by an impregnation method, with Al2O3-x serving as the support for plasma-catalyzed CO2 hydrogenation to dimethyl ether (DME). Cu/Al2O3-0.75/HZSM-5 demonstrated a high performance and discharge efficiency for plasma-catalyzed CO2 hydrogenation. The CO2 conversion and DME yield for plasma-catalyzed CO2 hydrogenation on Cu/Al2O3-0.75/HZSM-5 reached 21.98% and 9.83%, respectively, with selectivities for CO, CH3OH, and DME on Cu/Al2O3-0.75/HZSM-5 of 25.39%, 29.89%, and 44.72%, respectively. The deep pore structures on Al2O3-x serve as Cu loading sites, and the confinement effect of the pores enhances the metal-support interaction and Cu metal dispersion. More abundant and stronger Brønsted basic and Lewis acidic sites facilitate the activation and hydrogenation of CO2. Notably, the electric field formed by Cu sites anchored in the deep pore channel structures is conducive to guiding the activated plasma CO2 intermediates into the difficult-to-access pores for hydrogenation. Hydrogenation of the plasma-activated CO2 intermediates in the deep pore channels is crucial for improving plasma-catalyzed CO2 hydrogenation to DME.

Abstract Image

软模板诱导Cu/Al2O3深孔结构促进等离子体催化CO2加氢制二甲醚
等离子体活化多相催化是一种在温和条件下催化CO2加氢的有前途的方法。本研究通过软模板法在Al2O3-x上构建了具有深孔道的孔隙结构,并采用浸渍法制备了Cu/Al2O3-x, Al2O3-x作为等离子体催化CO2加氢制二甲醚(DME)的载体。Cu/Al2O3-0.75/HZSM-5具有较高的等离子体催化CO2加氢性能和放电效率。Cu/Al2O3-0.75/HZSM-5上等离子体催化CO2加氢的CO2转化率和DME产率分别达到21.98%和9.83%,CO、CH3OH和DME在Cu/Al2O3-0.75/HZSM-5上的选择性分别为25.39%、29.89%和44.72%。Al2O3-x表面的深层孔隙结构作为Cu的加载位点,孔隙的约束作用增强了金属-载体相互作用和Cu -金属的分散。更丰富和更强的Brønsted碱性和Lewis酸性位点有利于CO2的活化和加氢。值得注意的是,Cu位点锚定在深孔通道结构中形成的电场有利于引导活化的等离子体CO2中间体进入难以进入的孔中进行加氢。等离子体活化的CO2中间体在深孔通道中加氢是提高等离子体催化CO2加氢制二甲醚的关键。
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来源期刊
物理化学学报
物理化学学报 化学-物理化学
CiteScore
16.60
自引率
5.50%
发文量
9754
审稿时长
1.2 months
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