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首页> 外文期刊>RSC Advances >Sonochemical preparation of alumina-spheres loaded with Pd nanoparticles for 2-butyne-1,4-diol semi-hydrogenation in a continuous flow microwave reactor
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Sonochemical preparation of alumina-spheres loaded with Pd nanoparticles for 2-butyne-1,4-diol semi-hydrogenation in a continuous flow microwave reactor

机译:在连续流微波反应器中声化学法制备载有Pd纳米粒子的氧化铝球用于2-丁炔-1,4-二醇半加氢

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A novel protocol for microwave-assisted alkyne semi-hydrogenation under heterogeneous catalysis in a continuous flow reactor is reported herein. This challenging task has been accomplished using a multifaceted strategy which includes the ultrasound-assisted preparation of Pd nanoparticles (average ? 3.0 ± 0.5 nm) that were synthesized on the μ-metric pores of sintered alumina spheres ( ? 0.8 mm) and a continuous flow reaction under H _(2) (flow rate 7.5 mL min ~(?1) ) in a microwave reactor (counter-pressure 4.5 bar). The semi-hydrogenation of 2-butyne-1,4-diol in ethanol was chosen as a model reaction for the purposes of optimization. The high catalyst efficiency of the process, in spite of the low Pd loading (Pd content 111.15 mg kg ~(?1) from ICP-MS), is due to the pivotal role of ultrasound in generating a regular distribution of Pd nanoparticles across the entire support surface. Ultrasound promotes the nucleation, rather than the growth, of crystalline Pd nanoparticles and does so within a particularly narrow Gaussian size distribution. High conversion (>90.5%) and selectivity to ( Z )-2-butene-1,4-diol (95.20%) have been achieved at an alkyne solution flow rate of 10 mL min ~(?1) . The lead-free, alumina-stabilized Pd catalyst was fully characterized by TEM, HR-TEM, EDX, IR, XRPD and AAS. Highly dispersed Pd nanoparticles have proven themselves to be stable under the reaction conditions employed. The application of the method is subject to the dielectric properties of substrates and solvents, and is therefore hardly applicable to apolar alkynes. Considering the small volume of the reaction chamber, microwave-assisted flow hydrogenation has proven itself to be a safe procedure and one that is suitable for further scaling up to industrial application.
机译:本文报道了一种在连续流反应器中多相催化下微波辅助炔烃半氢化的新方案。这项具有挑战性的任务已通过多方面的策略完成,其中包括超声辅助制备的Pd纳米颗粒(平均≤3.0±0.5 nm),该纳米颗粒是在烧结氧化铝球的μ-μ孔上合成的(≤0.8 mm),并且连续流动。在微波反应器(反压4.5 bar)中,在H_(2)(流速7.5 mL min〜(?1))下进行反应。为了优化,选择2-丁炔-1,4-二醇在乙醇中的半氢化作为模型反应。尽管Pd含量低(ICP-MS中Pd含量为111.15 mg kg〜(?1)),但该方法仍具有较高的催化剂效率,这归因于超声在生成Pd纳米颗粒在整个反应室中规则分布的关键作用。整个支撑面。超声促进晶体Pd纳米颗粒的成核而不是生长,并且在特别狭窄的高斯尺寸分布内实现。在炔烃溶液的流速为10 mL min〜(?1)时,已实现了高转化率(> 90.5%)和对(Z)-2-丁烯-1,4-二醇的选择性(95.20%)。 TEM,HR-TEM,EDX,IR,XRPD和AAS可以完全表征无铅,氧化铝稳定的Pd催化剂。已证明高度分散的Pd纳米颗粒在所采用的反应条件下稳定。该方法的应用取决于基材和溶剂的介电性质,因此几乎不适用于非极性炔烃。考虑到反应室的体积很小,微波辅助流动氢化已被证明是一种安全的方法,并且适合进一步扩大规模用于工业应用。

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