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新型La-Co-O-C复合催化剂中用于促进氧化还原反应及增强甲烷燃烧热稳定性的组分调控

Component regulation in novel La-Co-O-C composite catalyst for boosted redox reactions and enhanced thermal stability in methane combustion.

作者信息

Chu Peiqi, Wang Saifei, Zhang Yi, Zhao Shiguang, Wang Yahan, Deng Jiguang, Duan Erhong

机构信息

School of Environmental Science and Engineering, Hebei University of Science and Technology, Shijiazhuang 050018, China.

School of Environmental Science and Engineering, Hebei University of Science and Technology, Shijiazhuang 050018, China.

出版信息

J Environ Sci (China). 2023 Apr;126:459-469. doi: 10.1016/j.jes.2022.04.002. Epub 2022 Apr 15.

Abstract

A novel La-Co-O-C (LC-C) composites were prepared via a facile co-hydrothermal route with oxides and glycerol and further optimized for methane catalytic activity and thermal stability via component regulation. It was demonstrated that CoO phase was the main component in regulation. The combined results of X-ray photoelectron spectroscopy (XPS), temperature-programmed desorption of oxygen (O-TPD), temperature-programmed reduction of hydrogen (H-TPR), temperature-programmed desorption of ammonia/carbon dioxide (NH/CO-TPD) revealed that component regulation led to more oxygen vacancies and exposure of surface Co, lower surface basicity and optimized acidity, which were beneficial for adsorption of active oxygen species and activation of methane molecules, resulting in the excellent catalytic oxidation performance. Especially, the (3.5)LC-C (3.5 is Co-to-La molar ratio) showed the optimum activity and the T and T (the temperature at which the CH conversion rate was 50% and 90%, respectively) were 318 and 367°C, respectively. Using theoretical calculations and in situ diffuse reflection infrared Fourier transform spectroscopy characterization, it was also found that the catalytic mechanism changes from the "Rideal-Eley" mechanism to the "Two-term" mechanism depending on the temperature windows in which the reaction takes place. Besides, the use of the "Flynn-Wall-Ozawa" model in thermoanalytical kinetics revealed that component regulation simultaneously optimized the decomposition activation energy, further expanding the application scope of carbon-containing composites.

摘要

通过一种简单的共水热法,以氧化物和甘油制备了一种新型的La-Co-O-C(LC-C)复合材料,并通过成分调控进一步优化其甲烷催化活性和热稳定性。结果表明,CoO相是调控的主要成分。X射线光电子能谱(XPS)、程序升温脱附氧(O-TPD)、程序升温还原氢(H-TPR)、程序升温脱附氨/二氧化碳(NH/CO-TPD)的综合结果表明,成分调控导致更多的氧空位和表面Co的暴露,降低了表面碱性并优化了酸性,这有利于活性氧物种的吸附和甲烷分子的活化,从而产生优异的催化氧化性能。特别是,(3.5)LC-C(3.5是Co与La的摩尔比)表现出最佳活性,CH转化率分别为50%和90%时的温度T和T分别为318和367°C。通过理论计算和原位漫反射红外傅里叶变换光谱表征还发现,催化机理根据反应发生的温度窗口从“Rideal-Eley”机理转变为“双项”机理。此外,在热分析动力学中使用“Flynn-Wall-Ozawa”模型表明,成分调控同时优化了分解活化能,进一步扩大了含碳复合材料的应用范围。

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