Missing Linker Defects in a Homochiral Metal-Organic Framework: Tuning the Chiral Separation Capacity
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Accepted version
Author(s)
Slater, Benjamin
Wang, Zeru
Jiang, Shanxue
Hill, Matthew R
Ladewig, Bradley P
Type
Journal Article
Abstract
Efficient chiral separation remains a very challenging task due to the identical physical and chemical properties of the enantiomers of a molecule. Enantiomers only behave differently from each other in the presence of other chiral species. Homochiral metal–organic frameworks (MOFs) have received much attention for their promising enantioseparation properties. However, there are still challenges to overcome in this field such as high enantiomeric separation. Structural defects play an important role in the properties of MOFs and can significantly change the pore architecture. In this work, we introduced missing linker defects into a homochiral metal–organic framework [Zn2(bdc)(l-lac)(dmf)] (ZnBLD; bdc = 1,4-benzenedicarboxylic acid, l-lac = l-lactic acid, dmf = N,N′-dimethylformamide) and observed an increase in enantiomeric excess for 1-phenylethanol of 35% with the defective frameworks. We adjusted the concentration of monocarboxylic acid ligand l-lactic acid by varying the ratio of Zn2+ to ligand from 0.5 to 0.85 mmol. Additionally, a defective framework was synthesized with propanoic acid as modulator. In order to elucidate the correlation between defects and enantiomeric excess, five characterization techniques (FTIR, TGA, 1H NMR, ICP, and PXRD) were employed. Full width at half-maximum analysis (fwhm) was performed on the powder X-ray diffraction traces and showed that the higher concentration of monocarboxylic acid MOFs were isostructural but suffered from increased fwhm values.
Date Issued
2017-12-20
Date Acceptance
2017-11-27
Citation
Journal of the American Chemical Society, 2017, 139 (50), pp.18322-18327
ISSN
1520-5126
Publisher
American Chemical Society
Start Page
18322
End Page
18327
Journal / Book Title
Journal of the American Chemical Society
Volume
139
Issue
50
Copyright Statement
Copyright © 2017 American Chemical Society
Subjects
Science & Technology
Physical Sciences
Chemistry, Multidisciplinary
Chemistry
ONE-POT SYNTHESIS
ENANTIOSELECTIVE SEPARATION
MODULATED SYNTHESIS
CATALYTIC-ACTIVITY
PD NANOPARTICLES
HIGH-PERFORMANCE
FACILE SYNTHESIS
DRUG-DELIVERY
MOFS
ADSORPTION
Publication Status
Published