Sol-gel fabrication of porous ceria microspheres for thermochemical carbon dioxide (CO2) splitting

Jianxing Ma , Jie Chen , Xiao Geng , Brett Alford , Zhao Zhang , Hai Xiao , Jianhua Tong , Fei Peng
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引用次数: 2

Abstract

Porous CeO2 has been of great interest recently, due to its great catalytic efficiency in splitting CO2 into CO and O2. Porous CeO2 microspheres are the key to scaling up such reactions in the fluidized-bed solar thermochemical reactors. In this paper, we report the processing and CO2 splitting performance of porous ceria microspheres. To fabricate the porous ceria microspheres, homogenous cerium-based sol-gel precursors were synthesized from cerium acetate. The acrylamide (AM) was used as both solidification and pore-generation agent. The polymerization of acrylamide facilitated the conversion of liquid droplets to solid gel microspheres. The optimal AM content was around 20 wt%, ensuring both sufficient porosity and the integrity of the ceria microspheres after thermal decomposition. After heat treatment at 1500 °C for 1 h, porous CeO2 microspheres were obtained, with an average diameter of ∼800 μm and surface area of 2.9 m2/g. These microspheres had high porosity and good sphericity. The CO2 splitting performances of these microspheres were characterized using thermogravimetric analysis (TGA). During the thermal cycles between 1000 and 1400 °C, the O2 yield of porous ceria microspheres was 49 μmol/g, and the CO yield was 88 μmol/g. Compared with porous ceria granules of particle size of ∼800 μm, the porous ceria microspheres exhibited higher O2 and CO production yields. After thermochemical cycles, the microspheres were not sintered together, and the surface area was slightly reduced to 2.7 m2/g.

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溶胶-凝胶法制备用于热化学二氧化碳(CO2)裂解的多孔二氧化铈微球
多孔CeO2由于其在将CO2分解为CO和O2方面具有很高的催化效率,最近引起了人们的极大兴趣。多孔CeO2微球是在流化床太阳能热化学反应器中扩大此类反应的关键。在本文中,我们报道了多孔二氧化铈微球的加工和CO2分解性能。为了制备多孔二氧化铈微球,以乙酸铈为原料合成了均匀的铈基溶胶-凝胶前驱体。丙烯酰胺(AM)同时用作固化剂和造孔剂。丙烯酰胺的聚合促进了液滴向固体凝胶微球的转化。最佳AM含量约为20wt%,确保了热分解后二氧化铈微球的足够孔隙率和完整性。在1500°C下热处理1小时后,获得了平均直径为~800μm、表面积为2.9m2/g的多孔CeO2微球。这些微球具有高孔隙率和良好的球形度。利用热重分析(TGA)对这些微球的CO2裂解性能进行了表征。在1000至1400°C的热循环过程中,多孔二氧化铈微球的O2产率为49μmol/g,CO产率为88μmol/g。与粒径为~800μm的多孔二氧化铈颗粒相比,多孔二氧化锆微球表现出更高的O2和CO产量。在热化学循环之后,微球没有烧结在一起,并且表面积略微减小到2.7m2/g。
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