Proline Functionalization of the Mesoporous Metal−Organic Framework DUT-32

The linker functionalization strategy was applied to incorporate proline moieties into a metal–organic framework (MOF). When 4,4′-biphenyldicarboxylic acid was replaced with a Boc-protected proline-functionalized linker (H2 L) in the synthesis of DUT-32 (DUT = Dresden University of Technology), a hi...

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Veröffentlicht in:Inorganic chemistry 2015-02, Vol.54 (3), p.1003-1009
Hauptverfasser: Kutzscher, Christel, Hoffmann, Herbert C, Krause, Simon, Stoeck, Ulrich, Senkovska, Irena, Brunner, Eike, Kaskel, Stefan
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Sprache:eng
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Zusammenfassung:The linker functionalization strategy was applied to incorporate proline moieties into a metal–organic framework (MOF). When 4,4′-biphenyldicarboxylic acid was replaced with a Boc-protected proline-functionalized linker (H2 L) in the synthesis of DUT-32 (DUT = Dresden University of Technology), a highly porous enantiomerically pure MOF (DUT-32-NHProBoc) was obtained, as could be confirmed by enantioselective high-performance liquid chromatography (HPLC) measurements and solid-state NMR experiments. Isotope labeling of the chiral side group proline enabled highly sensitive one- and two-dimensional solid-state 13C NMR experiments. For samples loaded with (S)-1-phenyl-2,2,2-trifluoroethanol [(S)-TFPE], the proline groups are shown to exhibit a lower mobility than that for (R)-TFPE-loaded samples. This indicates a preferred interaction of the shift agent (S)-TFPE with the chiral moieties. The high porosity of the compound is reflected by an exceptionally high ethyl cinnamate adsorption capacity. However, postsynthetic thermal deprotection of Boc−proline in the MOF leads to racemization of the chiral center, which was verified by stereoselective HPLC experiments and asymmetric catalysis of aldol addition.
ISSN:0020-1669
1520-510X
DOI:10.1021/ic502380q