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通过不同方法由稻壳制备用于CO甲烷化的可持续Ni/SiO催化剂

Preparation of Sustainable Ni/SiO Catalysts from Rice Husk by Different Methods for CO Methanation.

作者信息

Yu Yang, Zhang Yihuan, Hu Yizhi, Zhang Chong, Wu Rundong, Chen Xiaohan, Li Moke, Ye Runping, Zhang Rongbin, Feng Gang

机构信息

Key Laboratory of Jiangxi Province for Environment and Energy Catalysis, School of Chemistry and Chemical Engineering, Nanchang University, Nanchang, 330031, China.

出版信息

ChemSusChem. 2025 Feb 1;18(3):e202401514. doi: 10.1002/cssc.202401514. Epub 2024 Oct 25.

Abstract

Silicon dioxide (SiO) from rice husk can be extracted and be used as support for Ni-based catalysts. The impregnation method (IM) is usually used for preparing Ni/SiO catalysts, but its catalytic activity in CO hydrogenation to CH remains unsatisfactory. In this work, we explored alternative preparation methods, using ammonia evaporation method (AEM) and hydrothermal method (HM) to prepare the catalysts. The results showed that the catalysts prepared by AEM and HM were significantly superior to that prepared by IM. Notably, the catalyst synthesized by AEM from sustainable silica exhibited the best performance, achieving 81.69 % CO conversion and over 99 % methane selectivity at low reaction temperature of 300 °C. The characterization techniques indicate that the Ni/SiO-AEM catalyst can form nickel phyllosilicate with lamellar structure, leading to better Ni dispersion and higher specific surface area. Furthermore, the results of in-situ DRIFTS have revealed the potential catalytic mechanism over Ni/SiO catalysts, indicating that it involves pathways with both the CO* and HCOO* as the key intermediates.

摘要

稻壳中的二氧化硅(SiO₂)可被提取出来,并用作镍基催化剂的载体。浸渍法(IM)通常用于制备Ni/SiO₂催化剂,但其在CO加氢制CH₄反应中的催化活性仍不尽人意。在本工作中,我们探索了其他制备方法,采用氨蒸发法(AEM)和水热法(HM)来制备催化剂。结果表明,采用AEM和HM制备的催化剂明显优于采用IM制备的催化剂。值得注意的是,由AEM从可持续二氧化硅合成的催化剂表现出最佳性能,在300℃的低温反应条件下实现了81.69%的CO转化率和超过99%的甲烷选择性。表征技术表明,Ni/SiO₂-AEM催化剂能够形成具有层状结构的镍层状硅酸盐,从而实现更好的Ni分散和更高的比表面积。此外,原位漫反射红外傅里叶变换光谱(in-situ DRIFTS)结果揭示了Ni/SiO₂催化剂上潜在的催化机理,表明其涉及以CO和HCOO作为关键中间体的反应路径。

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