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  4. Preparation of Highly Porous Metal-Organic Framework Beads for Metal Extraction from Liquid Streams
 
research article

Preparation of Highly Porous Metal-Organic Framework Beads for Metal Extraction from Liquid Streams

Yang, Shuliang  
•
Peng, Li  
•
Syzgantseva, Olga A.  
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August 5, 2020
Journal Of The American Chemical Society

Metal-organic frameworks (MOFs) offer great promise in a variety of gas- and liquid-phase separations. However, the excellent performance on the lab scale hardly translates into pilot- or industrial-scale applications due to the microcrystalline nature of MOFs. Therefore, the structuring of MOFs into pellets or beads is a highly solicited and timely requirement. In this work, a general structuring method is developed for preparing MOF-polymer composite beads based on an easy polymerization strategy. This method adopts biocompatible, biodegradable poly(acrylic acid) (PAA) and sodium alginate monomers, which are cross-linked using Ca2+ ions. Also, the preparation procedure employs water and hence is nontoxic. Moreover, the universal method has been applied to 12 different structurally diverse MOFs and three MOF-based composites. To validate the applicability of the structuring method, beads consisting of a MOF composite, namely Fe-BTC/PDA, were subsequently employed for the extraction of Pb and Pd ions from real-world water samples. For example, we find that just 1 g of Fe-BTC/PDA beads is able to decontaminate >10 L of freshwater containing highly toxic lead (Pb) concentrations of 600 ppb while under continuous flow. Moreover, the beads offer one of the highest Pd capacities to date, 498 mg of Pd per gram of composite bead. Furthermore, large quantities of Pd, 7.8 wt %, can be readily concentrated inside the bead while under continuous flow, and this value can be readily increased with regenerative cycling.

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Type
research article
DOI
10.1021/jacs.0c02371
Web of Science ID

WOS:000558793400024

Author(s)
Yang, Shuliang  
Peng, Li  
Syzgantseva, Olga A.  
Trukhina, Olga  
Kochetygov, Ilia  
Justin, Anita  
Sun, Daniel T.  
Abedini, Hassan
Syzgantseva, Maria A.
Oveisi, Emad  
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Date Issued

2020-08-05

Publisher

AMER CHEMICAL SOC

Published in
Journal Of The American Chemical Society
Volume

142

Issue

31

Start page

13415

End page

13425

Subjects

Chemistry, Multidisciplinary

•

Chemistry

•

raman

•

calcium

•

ions

•

acid

•

construction

•

degradation

•

conversion

•

phenol

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CIME  
LFIM  
LSMO  
Available on Infoscience
September 3, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/171313
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