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Continuously operated falling film microreactor for selective hydrogenation of carbon-carbon triple bonds

机译:连续操作的降膜微反应器,用于碳-碳三键的选择性加氢

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摘要

Despite significant advances in the fabrication and applications of microreactors for production of chemicals, their use for catalytic reactions remains a challenge, especially in fine chemical synthesis where the selectivity towards the desired product is an issue. A falling film microstructured reactor (FFMR) was tested in the selective hydrogenation of 2-butyne-1,4-diol (1) to its olefinic derivative (2). The FFMR plates were coated with Al2O3 or ZnO followed by the deposition of Pd nanoparticles (NPs). The oxides were deposited on the microstructured reaction plates using either conventional washcoating or atomic layer deposition (ALD) in the liquid or gas phase, respectively. The Pd-NPs were either formed via impregnation of an organometallic precursor with subsequent reduction, or with pre-fabricated Pd-NPs stabilized in poly(vinyl pyrrolidon) (PVP) with subsequent pyrolysis of the organic matrix and activation in H-2 atmosphere. The palladium loading was varied in the range of 1.1-13.6 wt%. Different solvents including water, 2-propanol and mixtures with organic bases were tested aiming at their environmental impact and highest activity/selectivity. In this work the best performing catalyst was 1.1 wt% of Pd on ZnO which was prepared by washcoating and pre-fabricated Pd NPs. Under optimized conditions with water as solvent 98% of selectivity at 96% conversion was obtained, which was close to the results of the benchmark reaction in batch mode (with 98% selectivity at 99% conversion). Finally, the FFMR demonstrated a 15-fold higher performance in comparison with a batch-operated reactor showing important process intensification for the hydrogenation of (1) to (2) in continuous-flow mode. (C) 2016 Elsevier B.V. All rights reserved.
机译:尽管在微反应器的制造和应用中已经取得了很大的进步,但将其用于催化反应仍然是一个挑战,特别是在精细化学合成中,其中对所需产物的选择性是一个问题。在2-丁炔-1,4-二醇(1)选择性氢化成其烯烃衍生物(2)的过程中测试了降膜微结构反应器(FFMR)。 FFMR板涂有Al2O3或ZnO,然后沉积Pd纳米颗粒(NPs)。使用常规修补基面涂层或原子层沉积(ALD)分别在液相或气相中将氧化物沉积在微结构化反应板上。 Pd-NPs可以通过浸渍有机金属前体并随后还原而形成,也可以通过预制的,在聚乙烯吡咯烷酮(PVP)中稳定的Pd-NPs进行随后的有机基质热解并在H-2气氛中活化而形成。钯载量在1.1-13.6重量%的范围内变化。测试了不同的溶剂,包括水,2-丙醇以及与有机碱的混合物,目的在于它们对环境的影响和最高的活性/选择性。在这项工作中,性能最好的催化剂是Pd在ZnO上的含量为1.1 wt%,这是通过修补涂层和预制Pd NPs制备的。在优化的条件下,以水为溶剂,在96%的转化率下可获得98%的选择性,这接近于分批模式下基准反应的结果(在99%的转化率下具有98%的选择性)。最终,与分批操作的反应器相比,FFMR的性能提高了15倍,显示出在连续流模式下将(1)氢化为(2)的重要过程。 (C)2016 Elsevier B.V.保留所有权利。

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