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Optimization of Washing Processes in Solvothermal Synthesis of Nickel-Based MOF-74

机译:溶剂热合成镍基MOF-74的洗涤工艺优化

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摘要

Solvothermal synthesis is the most preferable preparation technique of metal–organic frameworks (MOFs) that consists of reactants mixing, ultrasonication, solvothermal reaction, product washing, and solvent evacuation. Owing to fast reaction kinetics in solvothermal reaction, this technique allows for production of uniform MOF particles with high crystallinity, high phase purity, and small particle sizes. However, it exhibits some difficulties of washing processes that may involve the blockage of pores due to incomplete removal of reactive medium from MOF products. The present study proposes an improvement of washing processes by introducing centrifugal separations with optimized parameters at two different stages: after reaction and after product washing. Nickel-based MOF-74 was synthesized as the experimental material for this purpose. The quality of the produced sample was evaluated by gas adsorption performance using CO at 1 bar and 25 °C. The final sample of the optimized synthesis routes was able to adsorb 5.80 mmol/g of CO uptake, which was competitive with literature data and significantly higher than the sample of the basic synthesis. Fourier-transform infrared spectroscopy (FTIR) and powder X-ray diffraction (PXRD) analysis revealed that the sample displayed much higher crystallinity structure and was clean from impurities after centrifugations. The outcome indicated the success of separation between MOF products and reactive medium during washing processes, leading to the effective pore activation of MOFs.
机译:溶剂热合成是金属-有机骨架(MOF)最优选的制备技术,该技术由反应物混合,超声处理,溶剂热反应,产物洗涤和溶剂抽空组成。由于溶剂热反应中的快速反应动力学,该技术可生产具有高结晶度,高相纯度和小粒径的均匀MOF颗粒。但是,由于从MOF产品中未完全去除反应性介质,它显示出一些洗涤过程的困难,可能涉及堵塞孔眼。本研究提出了通过在两个不同阶段引入具有优化参数的离心分离来改进洗涤工艺的方法:反应后和产物洗涤后。为此,合成了镍基MOF-74作为实验材料。通过在1 bar和25°C下使用CO的气体吸附性能来评估所生产样品的质量。优化的合成路线的最终样品能够吸附5.80 mmol / g的CO吸收,这与文献数据具有竞争性,并且显着高于基础合成的样品。傅立叶变换红外光谱(FTIR)和粉末X射线衍射(PXRD)分析表明,样品显示出更高的结晶度结构,并且离心后没有杂质。结果表明,在洗涤过程中,MOF产品和反应介质之间的分离成功,从而导致了MOF的有效孔活化。

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