MgO/Na2CO3和MgO/K2CO3作为豆油制备生物柴油的多相固体碱催化剂的比较

IF 4.2 2区 化学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Xiangyang Li, Xunxiang Jia, Weiji Li, Shufan Jia, Siwei Zhang, Jiliang Song, Jiao Wang
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引用次数: 0

摘要

生物柴油作为化石燃料的可再生替代品,其工业化生产迫切需要开发高效、可循环利用的固体碱催化剂。本研究以大豆油为原料,系统比较了MgO/Na2CO3和MgO/K2CO3催化剂的理化性质和催化性能差异。通过调节焙烧温度(500 ~ 700℃)、醇油比(3:1 ~ 24:1)和金属碳酸盐负载(10 ~ 50%),结合N2吸附-解吸、CO2-TPD、XRD、SEM-EDS和循环实验,揭示了钠钾离子半径差异对催化剂结构和性能的调节机理。结果表明:在最佳条件下,MgO/Na2CO3-600℃的FAME收率为97.5%,比MgO/K2CO3-600℃的95.8%提高了1.7%;这是由于其较高的比表面积(148.6 m2/g vs. 126.3 m2/g),均匀的介孔结构和强的碱性位点密度。此外,MgO/K2CO3的循环稳定性明显较低,循环5次后仅保持65.2%的产率,而MgO/Na2CO3的循环稳定性为88.2%。这种稳定性差异源于它们在反应体系中的溶解度不同。K2CO3在甲醇中的溶解度更高(60℃时为3.25 g/100 g,而Na2CO3为1.15 g/100 g),这也反映在离子浸出率上(K+为27.7%,Na+为18.9%)。本研究证实了Na+掺入MgO晶格可以优化活性位点的分布。虽然K+表面富集可以增强结构稳定性,但较高的浸出率会导致催化剂活性迅速下降,这为可持续生物柴油生产中平衡催化剂活性和耐久性提供了理论基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison of High-Efficiency MgO/Na2CO3 and MgO/K2CO3 as Heterogeneous Solid Base Catalysts for Biodiesel Production from Soybean Oil.

As a renewable alternative to fossil fuels, the industrial production of biodiesel urgently requires the development of efficient and recyclable solid base catalysts. In this study, the physicochemical properties and catalytic performance differences between MgO/Na2CO3 and MgO/K2CO3 catalysts were systematically compared using soybean oil as the raw material. By regulating the calcination temperature (500-700 °C), alcohol-to-oil ratio (3:1-24:1), and metal carbonate loading (10-50%), combined with N2 adsorption-desorption, CO2-TPD, XRD, SEM-EDS, and cycling experiments, the regulatory mechanisms of the ionic radius differences between sodium and potassium on the catalyst structure and performance were revealed. The results showed that MgO/Na2CO3-600 °C achieved a FAME yield of 97.5% under optimal conditions, which was 1.7% higher than MgO/K2CO3-600 °C (95.8%); this was attributed to its higher specific surface area (148.6 m2/g vs. 126.3 m2/g), homogeneous mesoporous structure, and strong basic site density. In addition, the cycle stability of MgO/K2CO3 was significantly lower, retaining only 65.2% of the yield after five cycles, while that of MgO/Na2CO3 was 88.2%. This stability difference stems from the disparity in their solubility in the reaction system. K2CO3 has a higher solubility in methanol (3.25 g/100 g at 60 °C compared to 1.15 g/100 g for Na2CO3), which is also reflected in the ion leaching rate (27.7% for K+ versus 18.9% for Na+). This study confirms that Na+ incorporation into the MgO lattice can optimize the distribution of active sites. Although K+ surface enrichment can enhance structural stability, the higher leaching rate leads to a rapid decline in catalyst activity, providing a theoretical basis for balancing catalyst activity and durability in sustainable biodiesel production.

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来源期刊
Molecules
Molecules 化学-有机化学
CiteScore
7.40
自引率
8.70%
发文量
7524
审稿时长
1.4 months
期刊介绍: Molecules (ISSN 1420-3049, CODEN: MOLEFW) is an open access journal of synthetic organic chemistry and natural product chemistry. All articles are peer-reviewed and published continously upon acceptance. Molecules is published by MDPI, Basel, Switzerland. Our aim is to encourage chemists to publish as much as possible their experimental detail, particularly synthetic procedures and characterization information. There is no restriction on the length of the experimental section. In addition, availability of compound samples is published and considered as important information. Authors are encouraged to register or deposit their chemical samples through the non-profit international organization Molecular Diversity Preservation International (MDPI). Molecules has been launched in 1996 to preserve and exploit molecular diversity of both, chemical information and chemical substances.
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