Zr-Modified Ni/CaO Dual Function Materials (DFMs) for Direct Methanation in an Integrated CO2 Capture and Utilization Process

甲烷化 催化作用 化学工程 材料科学 格式化 多孔性 热稳定性 动力学 化学 有机化学 复合材料 量子力学 物理 工程类
作者
Seong Bin Jo,Jin Hyeok Woo,Tu Thi Phuong Nguyen,Ju Eon Kim,Tae Young Kim,Ho-Jung Ryu,Byungwook Hwang,Jae Chang Kim,Soo Chool Lee,Kandis Leslie Gilliard‐AbdulAziz
出处
期刊:Energy & Fuels [American Chemical Society]
卷期号:37 (24): 19680-19694 被引量:22
标识
DOI:10.1021/acs.energyfuels.3c02935
摘要

An integrated CO2 capture and direct methanation (ICCM) system has recently gained significant attention as a promising process to produce value-added chemicals. Compared to conventional CO2 capture and utilization, ICCM is a simplified process that directly converts captured CO2 without purification at lower thermal inputs. One of the primary limitations is the deactivation of the sorbent and the embedded catalysts after several thermal cycles. In this study, we formulated thermally stable macroporous structured Ni/CaO dual function materials (DFMs) by incorporating a Zr stabilizer. The textural properties, porosity, CO2 capture performance, and catalytic activity of Zr-modified Ni/CaO (Ni/CaZr) were assessed. In situ DRIFTS was used to investigate the possible intermediates and reactions during the ICCM. It was found that CH4 is produced from the formate and methoxy intermediates route on the CaO surface and the CO intermediate route on the Ni surface. Ni/CaZr had improved thermal stability with the best CO2 capture capacity (13–14 mmol of CO2/g), CH4 productivity (13–14 mmol of CH4/g), CO2 sorption, and desorption kinetics at 500 °C. The benefit of adding Zr for ICCM enhanced the macroporous structures, which enhanced the CO2 mass transport and prevented the sintering of Ni and CaO.
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