α-Alkylation of Aliphatic Ketones with Alcohols: Base Type as an Influential Descriptor

Catalysts Pub Date : 2024-07-19 DOI:10.3390/catal14070463
Rasika Mane, Li Hui, Ander Centeno-Pedrazo, Alexandre Goguet, N. Artioli, H. Manyar
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Abstract

Current global challenges associated with energy security and climate emergency, caused by the combustion of fossil fuels (e.g., jet fuel and diesel), necessitate the accelerated development and deployment of sustainable fuels derived from renewable biomass-based chemical feedstocks. This study focuses on the production of long-chain (straight and branched) ketones by direct α-alkylation of short chain ketones using both homogenous and solid base catalysts in water. Thus, produced long-chain ketones are fuel precursors and can subsequently be hydrogenated to long-chain alkanes suitable for blending in aviation and liquid transportation fuels. Herein, we report a thorough investigation of the catalytic activity of Pd in combination with, (i) homogenous and solid base additives; (ii) screening of different supports using NaOH as a base additive, and (iii) a comparative study of the Ni and Pd metals supported on layered double oxides (LDOs) in α-alkylation of 2-butanone with 1-propanol as an exemplar process. Among these systems, 5%Pd/BaSO4 with NaOH as a base showed the best results, giving 94% 2-butanone conversion and 84% selectivity to alkylated ketones. These results demonstrated that both metal and base sites are necessary for the selective conversion of 2-butanone to alkylated ketones. Additionally, amongst the solid base additives, Pd/C with 5% Ba/hydrotalcite showed the best result with 51% 2-butanone conversion and 36% selectivity to the alkylated ketones. Further, the screening of heterogenous acid-base catalysts 2.5%Ni/Ba1.2Mg3Al1 exhibited an adequate catalytic activity (21%) and ketone selectivity (47%).
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脂肪族酮与醇的α-烷基化:作为影响描述因子的碱类型
目前,化石燃料(如航空燃料和柴油)的燃烧造成了能源安全和气候紧急状况等全球性挑战,因此有必要加快开发和应用从可再生生物质化学原料中提取的可持续燃料。本研究的重点是在水中使用均相催化剂和固相催化剂,通过短链酮的直接 α-烷基化反应生产长链(直链和支链)酮。因此,生产出的长链酮是燃料前体,随后可加氢生成长链烷烃,适用于航空和液体运输燃料的混合。在此,我们报告了对 Pd 与以下几种添加剂结合的催化活性的深入研究:(i) 均质添加剂和固体碱添加剂;(ii) 使用 NaOH 作为碱添加剂筛选不同的支持物;(iii) 以 2-丁酮与 1-丙醇的α-烷基化过程为例,对支持在层状双氧化物(LDO)上的 Ni 和 Pd 金属进行比较研究。在这些体系中,以 NaOH 为碱的 5%Pd/BaSO4 效果最好,2-丁酮转化率达 94%,对烷基化酮的选择性达 84%。这些结果表明,金属位点和碱位点对于 2-丁酮向烷基化酮的选择性转化都是必要的。此外,在固体碱添加剂中,含 5%钡/氢铝土的 Pd/C 效果最好,2-丁酮转化率为 51%,对烷基化酮的选择性为 36%。此外,筛选出的异源酸碱催化剂 2.5%Ni/Ba1.2Mg3Al1 表现出足够的催化活性(21%)和酮选择性(47%)。
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