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Abstract
The integration of luminescence and chirality in easy-scalable metal-organic frameworks gives rise to the development of advanced luminescent sensors. To date, the synthesis of chiral metal-organic frameworks is poorly predictable and their chirality primarily originates from components that constitute the frameworks. By contrast, the introduction of chirality into the pores of metal-organic frameworks has not been explored to the best of our knowledge. Here, we demonstrate that chirality can be introduced into an anionic Zn-based metal-organic framework via simple cation exchange, yielding dual luminescent centers comprised of the ligand and Tb3+ ions, accompanied by a chiral center in the pores. This bifunctional material shows enantioselectivity luminescent sensing for a mixture of stereoisomers, demonstrated for Cinchonine and Cinchonidine epimers and amino alcohol enantiomers, from which the quantitative determination of the stereoisomeric excess has been obtained. This study paves a pathway for the design of multifunctional metal-organic framework systems as a useful method for rapid sensing of chiral molecules.
Metal-organic frameworks with luminescence and chirality are promising for luminescent sensors for chiral molecules. Here, the authors use cation exchange to introduce chirality in multifunctional metal-organic framework systems for rapid enantioselective luminescent sensing.
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1 Nankai University, Key Laboratory of Advanced Energy Materials Chemistry (MOE), College of Chemistry, Tianjin, China (GRID:grid.216938.7) (ISNI:0000 0000 9878 7032)
2 University of Manchester, School of Chemistry, Manchester, UK (GRID:grid.5379.8) (ISNI:0000000121662407)
3 Harwell Science Campus, Diamond Light Source, Didcot, UK (GRID:grid.5379.8)
4 Nankai University, School of Materials Science and Engineering, Institute of New Energy Material Chemistry, Tianjin, China (GRID:grid.216938.7) (ISNI:0000 0000 9878 7032)
5 Nankai University, Key Laboratory of Functional Polymer Materials (MOE), College of Chemistry, Tianjin, China (GRID:grid.216938.7) (ISNI:0000 0000 9878 7032)