Roth Thomas F H, Kühl Alexander, Spiekermann Maximilian L, Wegener Hannes W, Seidensticker Thomas
Department for Biochemical and Chemical Engineering, Laboratory for Industrial Chemistry, TU Dortmund University, Emil-Figge-Str. 66, 44265, Dortmund, Germany.
ChemSusChem. 2024 Jul 8;17(13):e202400036. doi: 10.1002/cssc.202400036. Epub 2024 Mar 13.
The hydrogenation of polyunsaturated fatty acids (PUFAs) in vegetable oils and their derivatives is essential for their use in many areas, such as biofuels and food chemistry. However, no attempts have been made to adapt this technology to the requirements of further chemical utilization of fatty acid methyl esters as molecular building blocks, especially for particularly promising double-bond reactions. In this work, we, therefore, use three homogeneous catalytic model reactions (hydroformylation, isomerizing methoxycarbonylation, and ethenolysis) to show, firstly, that it is already known from the literature that high PUFA contents have a negative impact on activity and selectivity. Subsequently, using the example of soybean and canola biodiesel, we demonstrate that these key figures can be drastically improved by a preceding selective partial hydrogenation. This makes it possible to first reduce the share of PUFAs to <1 w % without causing significant overhydrogenation and then to carry out hydroformylation, methoxycarbonylation, and ethenolysis with significantly increased activity (up to twentyfold) and selectivity (up to 80 % increase). With these findings, we hope to convince the scientific and industrial world of the potential of selective partial hydrogenation as a key technology for utilizing renewable raw materials and to encourage its effective use in future work.
植物油及其衍生物中多不饱和脂肪酸(PUFAs)的氢化对于其在生物燃料和食品化学等许多领域的应用至关重要。然而,尚未有人尝试使该技术适应脂肪酸甲酯作为分子构建单元进一步化学利用的要求,特别是对于特别有前景的双键反应。因此,在本工作中,我们使用三种均相催化模型反应(氢甲酰化、异构化甲氧基羰基化和乙烯解)来表明,首先,文献中已经知道高PUFA含量会对活性和选择性产生负面影响。随后,以大豆和油菜籽生物柴油为例,我们证明通过预先进行选择性部分氢化可以大幅提高这些关键指标。这使得首先将PUFAs的份额降低至<1 w %而不会导致显著的过度氢化成为可能,然后以显著提高的活性(高达二十倍)和选择性(高达80 %的提高)进行氢甲酰化、甲氧基羰基化和乙烯解。基于这些发现,我们希望说服科学界和工业界相信选择性部分氢化作为利用可再生原料的关键技术的潜力,并鼓励其在未来工作中的有效应用。