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The Study of Reverse Water Gas Shift Reaction Activity over Different Interfaces: The Design of Cu-Plate ZnO Model Catalysts

机译:不同界面反应反应活动的研究:Cu板ZnO模型催化剂的设计

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摘要

CO2 hydrogenation to methanol is one of the main and valuable catalytic reactions applied on Cu/ZnO-based catalysts; the interface formed through Zn migration from ZnO support to the surface of Cu nanoparticle (ZnOx-Cu NP-ZnO) has been reported to account for methanol synthesis from CO2 hydrogenation. However, the accompanied reverse water gas shift (RWGS) reaction significantly decreases methanol selectivity and deactivates catalysts soon. Inhibition of RWGS is thus of great importance to afford high yield of methanol. The clear understanding of the reactivity of RWGS reaction on both the direct contact Cu-ZnO interface and ZnOx-Cu NP-ZnO interface is essential to reveal the low methanol selectivity in CO2 hydrogenation to methanol and look for efficient catalysts for RWGS reaction. Cu doped plate ZnO (ZnO:XCu) model catalysts were prepared through a hydrothermal method to simulate direct contact Cu-ZnO interface and plate ZnO supported 1 wt % Cu (1Cu/ZnO) catalyst was prepared by wet impregnation for comparison in RWGS reaction. Electron paramagnetic resonance (EPR), XRD, SEM, Raman, hydrogen temperature-programmed reduction (H2-TPR) and CO2 temperature-programmed desorption (CO2-TPD) were employed to characterize these catalysts. The characterization results confirmed that Cu incorporated into ZnO lattice and finally formed direct contact Cu-ZnO interface after H2 reduction. The catalytic performance revealed that direct contact Cu-ZnO interface displays inferior RWGS reaction reactivity at reaction temperature lower than 500 °C, compared with the ZnOx-Cu NP-ZnO interface; however, it is more stable at reaction temperature higher than 500 °C, enables ZnO:XCu model catalysts superior catalytic activity to that of 1Cu/ZnO. This finding will facilitate the designing of robust and efficient catalysts for both CO2 hydrogenation to methanol and RWGS reactions.
机译:CO2加氢甲醇是施加在ZnO系铜/催化剂的主要的和有价值的催化反应中的一个;通过锌迁移形成由ZnO支撑成Cu纳米颗粒(ZnOx铜NP-ZnO)的表面上的接口已经报道以考虑从CO2加氢合成甲醇。然而,伴随着反向水煤气变换(RWGS)反应显著很快降低甲醇的选择性和去激活催化剂。 RWGS的抑制是非常重要的从而得到甲醇的产量高。直接接触的Cu-ZnO接口和ZnOx铜NP-ZnO的接口上都RWGS反应的反应性的明确的认识是必不可少的揭示CO2加氢反应的低甲醇对甲醇的选择性,并寻找适合RWGS反应有效的催化剂。掺Cu板的ZnO(氧化锌:XCU)通过水热法来制备模型催化剂以模拟直接接触的Cu-ZnO界面和板的ZnO支撑1重量%的Cu(1CU / ZnO)的催化剂的制备通过湿浸渍在RWGS反应比较。电子顺磁共振(EPR),XRD,SEM,拉曼,氢程序升温还原(H2-TPR)和CO 2的程序升温脱附(CO 2-TPD)被雇用来表征这些催化剂。表征结果证实,铜掺入的ZnO晶格最后H 2还原之后形成直接接触的Cu-ZnO接口。的催化性能显示在反应温度下该直接接触的Cu-ZnO界面显示劣RWGS反应的反应性低于500℃下,用ZnOx铜NP-ZnO的界面相比;但是,它是在反应温度下更稳定超过500℃时,使氧化锌:XCU模型催化剂到1CU /氧化锌的优良的催化活性。这一发现将促进健壮和有效的催化剂的两个CO2加氢甲醇和RWGS反应设计。

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