不同价态金属掺杂对La2O3(001)表面甲烷活化的影响

Q3 Energy 燃料化学学报 Pub Date : 2023-05-01 DOI:10.1016/S1872-5813(23)60343-3
Jia-yu ZHANG , Na SUN , Li-xia LING , Ri-guang ZHANG , Li-tao JIA , De-bao LI , Bao-jun WANG
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引用次数: 2

摘要

La2O3作为一种催化剂,由于其优异的稳定性和高的C2选择性,被用于甲烷氧化偶联(OCM)反应,但其对甲烷离解的活性较差,限制了其广泛的应用。在La2O3(001)表面掺杂不同价态金属以提高甲烷转化活性,并通过密度泛函理论(DFT)计算研究了甲烷在金属掺杂的La2O3(0.001)表面的活化。掺杂金属的价态与甲烷转化活性的关系表明,掺杂低价金属(Li、Na、K、Mg、Ca、Sr和Ba)和等效金属(Al、Ga、In)可以显著提高甲烷的转化活性。其中,甲烷在Li-La2O3(001)表面的活化能最低,仅为13.0kJ/mol。然而,高价金属(Zr、Nb、Re和W)的掺杂不能提高CH4的离解活性。此外,还研究了表面氧空位形成能、酸碱性质和CH4活化能之间的关系。结果表明,随着金属价态的增加,氧空位形成能增加,CH4的离解活性降低。碱金属和碱土金属的引入增加了La2O3(001)表面的碱度,并且掺杂了碱金属的La2O3(0.001)的碱度强于掺杂了碱土金属,表现出更高的CH4离解活性。我们的研究可以为提高La2O3催化剂上的甲烷转化活性提供指导。
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Effect of different valence metals doping on methane activation over La2O3(001) surface

La2O3 as a catalyst is used for oxidative coupling of methane (OCM) reactions due to its excellent stability and high C2 selectivity, but poor activity on methane dissociation limits its wide application. Different valence metals are doped on the La2O3(001) surface to improve the methane conversion activity, and the activation of methane on metal-doped La2O3(001) surfaces has been investigated via the density functional theory (DFT) calculations. The relationship between the valence states of doped metals and the methane conversion activities shows that doping low valence metals (Li, Na, K, Mg, Ca, Sr and Ba) and equivalent metals (Al, Ga, In) can significantly improve the conversion activity of methane. Among them, the activation energy of methane on the Li-La2O3(001) surface is the lowest, which is only 13.0 kJ/mol. However, doping of high valence metals (Zr, Nb, Re and W) cannot improve the CH4 dissociation activity. Furthermore, the relationships between surface oxygen vacancy formation energies, acid-base properties and the activation energies of CH4 have also been investigated. The results show that with the increase of metal valence state, the oxygen vacancy formation energy increases, while the dissociation activity of CH4 decreases. The introduction of alkali and alkaline earth metals increases the alkalinity of La2O3(001) surface, and the alkalinity of La2O3(001) doped with the alkali metal is stronger than that with the alkaline earth metal, exhibiting higher dissociation activity of CH4. Our research may provide a guide for improving methane conversion activity on La2O3 catalysts.

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来源期刊
燃料化学学报
燃料化学学报 Chemical Engineering-Chemical Engineering (all)
CiteScore
2.80
自引率
0.00%
发文量
5825
期刊介绍: Journal of Fuel Chemistry and Technology (Ranliao Huaxue Xuebao) is a Chinese Academy of Sciences(CAS) journal started in 1956, sponsored by the Chinese Chemical Society and the Institute of Coal Chemistry, Chinese Academy of Sciences(CAS). The journal is published bimonthly by Science Press in China and widely distributed in about 20 countries. Journal of Fuel Chemistry and Technology publishes reports of both basic and applied research in the chemistry and chemical engineering of many energy sources, including that involved in the nature, processing and utilization of coal, petroleum, oil shale, natural gas, biomass and synfuels, as well as related subjects of increasing interest such as C1 chemistry, pollutions control and new catalytic materials. Types of publications include original research articles, short communications, research notes and reviews. Both domestic and international contributors are welcome. Manuscripts written in Chinese or English will be accepted. Additional English titles, abstracts and key words should be included in Chinese manuscripts. All manuscripts are subject to critical review by the editorial committee, which is composed of about 10 foreign and 50 Chinese experts in fuel science. Journal of Fuel Chemistry and Technology has been a source of primary research work in fuel chemistry as a Chinese core scientific periodical.
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