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Synthesis of mesoporous MgO-CeO2 composites with enhanced CO2 capture rate via controlled combustion

机译:通过控制燃烧合成具有增强的CO2捕获速率的中孔MgO-CeO2复合材料

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MgO-CeO2 composites with enhanced sorption rate for CO2 capture were prepared via a sol-gel combustion method. The effects of water, cerium, and citric acid on the sorption performance were investigated systematically to elucidate the role of components. The cerium content substantially lowered the decomposition temperature by 100 degrees C and the amount of citric acid affected the propagation rate. Controlled combustion led to different pore structures and CO2 capture performances, and controlling the amount of citric acid was the most effective way to improve the textural properties and performances. The developed MgO-CeO2 composites consist of nanoparticles covered with a flat plate, and a small amount of residual carbon from citric acid was also observed in the samples. The optimal MgO-CeO2 composite using the Ce/Mg molar ratio of 0.05 exhibited a high surface area (333 m(2)/g) and enhanced CO2 capture capacity (10.4 wt%) at 30 degrees C. All the composites showed a fast sorption rate that reached approximately 70% of the capacity within 3 min. The analysis of the CO2-TPD profiles and XPS spectra indicated that even a relatively small amount of carbonaceous residues after calcinations contributed to retaining more amounts of strong basic sites and consequently resulted in the fast sorption rate. In the cyclic test, the sorption capacity is reasonably stable from the 2nd cycle onwards. The simple preparation via cerium doping and the citric acid-assisted sol-gel combustion can contribute to the development of sorbents for post-combustion as well as pre-combustion CO2 capture.
机译:通过溶胶 - 凝胶燃烧方法制备具有增强的CO 2吸附速率的MgO-CeO2复合材料。系统地研究了水,铈和柠檬酸对吸附性能的影响,以阐明组分的作用。铈含量基本上将分解温度降低100℃,并且柠檬酸的量影响着传播速率。受控燃烧导致不同的孔隙结构和CO 2捕获性能,并控制柠檬酸的量是改善纹理性质和性能的最有效方法。开发的MgO-CeO2复合材料由覆盖有平板的纳米颗粒,并且在样品中也观察到来自柠檬酸的少量残留碳。使用Ce / mg摩尔比的最佳MgO-CeO2复合材料,0.05的高表面积(333μm(2)/ g)和增强的CO 2捕获容量(10.4wt%)在30℃下表现出所有复合材料均显示出快速吸附率在3分钟内达到大约70%的容量。 CO2-TPD谱和XPS光谱的分析表明,即使煅烧后也具有相对少量的碳质残留物,导致更多的强碱性位点并因此导致快速吸附速率。在循环试验中,吸附容量从第二周期开始合理稳定。通过铈掺杂和柠檬酸辅助溶胶 - 凝胶燃烧的简单制备可以有助于开发用于后燃烧的吸附剂以及预燃烧的CO2捕获。

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