Issue 29, 2015

Gas–liquid segmented flow microwave-assisted synthesis of MOF-74(Ni) under moderate pressures

Abstract

The metal organic framework, MOF-74(Ni), was synthesized in a continuous flow microwave-assisted reactor obtaining a high space-time yield (~90 g h−1 L−1) and 96.5% conversion of reagents. Separation of the nucleation and growth steps was performed by using uniform and rapid microwave heating to induce nucleation, which allowed a substantial increase in conversion for shorter reaction times under mild pressure. High yields were achieved in minutes, as opposed to days for typical batch syntheses, with excellent control over the material's properties due to more uniform nucleation, and the separation of the nucleation and growth steps. Optimization of the microwave reactor parameters led to improvements in MOF-74(Ni) crystallinity, reagent conversion, and production rates. Differences in MOF-74(Ni) crystallinity were observed as smaller grains were formed when higher microwave zone temperatures were used. Crystallinity differences led to different final adsorption properties and surface areas. Herein we show that a continuous high space-time yield synthesis of MOF-74(Ni) allows control over nucleation using microwave heating.

Graphical abstract: Gas–liquid segmented flow microwave-assisted synthesis of MOF-74(Ni) under moderate pressures

Article information

Article type
Paper
Submitted
30 Apr 2015
Accepted
08 Jun 2015
First published
08 Jun 2015

CrystEngComm, 2015,17, 5502-5510

Author version available

Gas–liquid segmented flow microwave-assisted synthesis of MOF-74(Ni) under moderate pressures

G. H. Albuquerque, R. C. Fitzmorris, M. Ahmadi, N. Wannenmacher, P. K. Thallapally, B. P. McGrail and G. S. Herman, CrystEngComm, 2015, 17, 5502 DOI: 10.1039/C5CE00848D

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