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Highly dispersed Cu-anchored nanoparticles based mordenite zeolite catalyst (Cu-MOR): Influence of the different preparation methods for direct methane oxidation (DMTM) to methanol

丝光沸石 初湿浸渍 催化作用 甲烷 甲醇 化学工程 沸石 合成气 化学 无机化学 吸附 材料科学 有机化学 选择性 工程类
作者
Ijaz Hussain,Saheed A. Ganiyu,Hassan Alasiri,Khalid Alhooshani
出处
期刊:Journal of The Energy Institute [Elsevier BV]
卷期号:109: 101269-101269 被引量:9
标识
DOI:10.1016/j.joei.2023.101269
摘要

Methane is widely recognized as one of the most significant greenhouse gases released into the atmosphere by shale gas and natural gas, contributing to global warming. Developing innovative technology for converting methane into transferable, storable, and useable liquid fuels is essential for long-term sustainability and carbon neutrality. Direct methane oxidation (DMTM) is one of the most efficient and cost-effective methods for producing methanol. The purpose of this research was to develop a highly active Cu-loaded mordenite zeolites (Cu-MOR) catalyst by the hydrothermal and ion exchange processes. Different methods were employed for Cu incorporation via double solvent, physical mixing, wetness impregnation, and incipient wetness impregnation. The synthesized catalysts were characterized by X-ray diffraction (XRD), Transmission Electron Microscopy (TEM), Scanning Electron Microscopy (SEM), N2-adsorption analysis, Fourier Transform Infrared Spectroscopy (FTIR), and Methane Temperature Programmed Desorption (CH4-TPD). The DMTM was performed, and it was found that the Cu-MOR (WI) catalyst that was prepared by wetness impregnation exhibited a higher methanol yield (26.5 μmol gcat−1) compared to other catalysts as a result of the high metal dispersion and high methane adsorption. According to data from TEM and CH4-TPD, this superior performance was strongly related to the particle sizes of copper and the synthesis methods used. Additionally, it was discovered that the longer the methane was in contact with the Cu-MOR (WI), the greater the amount of methanol that was produced (83.3 μmol gcat−1). Based on the finding that the Cu-MOR (WI) catalyst is highly efficient for the DMTM, this study has the potential to significantly decrease methane emissions.
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