TY - JOUR A1 - Weh, Manuel A1 - Shoyama, Kazutaka A1 - Würthner, Frank T1 - Preferential molecular recognition of heterochiral guests within a cyclophane receptor JF - Nature Communications N2 - The discrimination of enantiomers by natural receptors is a well-established phenomenon. In contrast the number of synthetic receptors with the capability for enantioselective molecular recognition of chiral substrates is scarce and for chiral cyclophanes indicative for a preferential binding of homochiral guests. Here we introduce a cyclophane composed of two homochiral core-twisted perylene bisimide (PBI) units connected by p-xylylene spacers and demonstrate its preference for the complexation of [5]helicene of opposite helicity compared to the PBI units of the host. The pronounced enantio-differentiation of this molecular receptor for heterochiral guests can be utilized for the enrichment of the P-PBI-M-helicene-P-PBI epimeric bimolecular complex. Our experimental results are supported by DFT calculations, which reveal that the sterically demanding bay substituents attached to the PBI chromophores disturb the helical shape match of the perylene core and homochiral substrates and thereby enforce the formation of syndiotactic host-guest complex structures. Hence, the most efficient substrate binding is observed for those aromatic guests, e. g. perylene, [4]helicene, phenanthrene and biphenyl, that can easily adapt in non-planar axially chiral conformations due to their inherent conformational flexibility. In all cases the induced chirality for the guest is opposed to those of the embedding PBI units, leading to heterochiral host-guest structures. KW - coordination chemistry KW - molecular capsules KW - stereochemistry Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-357750 VL - 14 ER - TY - JOUR A1 - Weh, Manuel A1 - Rühe, Jessica A1 - Herbert, Benedikt A1 - Krause, Ana‐Maria A1 - Würthner, Frank T1 - Deracemization of Carbohelicenes by a Chiral Perylene Bisimide Cyclophane Template Catalyst JF - Angewandte Chemie International Edition N2 - Deracemization describes the conversion of a racemic mixture of a chiral molecule into an enantioenriched mixture or an enantiopure compound without structural modifications. Herein, we report an inherently chiral perylene bisimide (PBI) cyclophane whose chiral pocket is capable of transforming a racemic mixture of [5]‐helicene into an enantioenriched mixture with an enantiomeric excess of 66 %. UV/Vis and fluorescence titration studies reveal this cyclophane host composed of two helically twisted PBI dyes has high binding affinities for the respective homochiral carbohelicene guests, with outstanding binding constants of up to 3.9×10\(^{10}\) m\(^{-1}\) for [4]‐helicene. 2D NMR studies and single‐crystal X‐ray analysis demonstrate that the observed strong and enantioselective binding of homochiral carbohelicenes and the successful template‐catalyzed deracemization of [5]‐helicene can be explained by the enzyme‐like perfect shape complementarity of the macrocyclic supramolecular host. KW - chirality transfer KW - cyclophanes KW - deracemization KW - dyes/pigments KW - template catalysis Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-244787 VL - 60 IS - 28 SP - 15323 EP - 15327 ER - TY - THES A1 - Weh, Manuel T1 - Chiral Perylene Bisimide Cyclophanes T1 - Chirale Perylenbisimidcyclophane N2 - This work illustrates how the targeted tailoring of supramolecular cavities can not only accomplish high binding due to optimized stereoelectronic shape matches between host and guest but also how molecular engineering of the binding site by a refined substitution periphery of the cavity makes enantiospecific guest recognition and host mediated chirality transfer feasible. Moreover, an enzyme mimic, following the Pauling-Jencks model of enzyme catalysis was realized by the smart design of a PBI host composed of moderately twisted chromophores, which drives the substrate inversion according to the concepts of transition state stabilization and ground state destabilization. The results of this thesis contribute to a better understanding of structure-specific interactions in host-guest complexes as well as the corresponding thermodynamic and kinetic properties and represent an appealing blueprint for the design of new artificial complex structures of high stereoelectronic shape complementarity in order to achieve the goal of sophisticated supramolecular receptors and enzyme mimicry. N2 - Diese Arbeit zeigt auf, wie durch die gezielte Konstruktion supramolekularer Kavitäten nicht nur hohe Bindungsaffinitäten aufgrund optimierter stereoelektronischer Formübereinstimmungen zwischen Wirt und Gast erreicht werden können, sondern auch, wie das molekulare Design der Bindungsstelle durch die genaue Einstellung der Substitutionsperipherie der Kavität eine enantiospezifische Gasterkennung sowie einen Wirt-vermittelten Chiralitätstransfer ermöglicht. Darüber hinaus wurde ein Enzymimitat, welches dem Pauling-Jencks-Modell der Enzymkatalyse folgt, durch das intelligente Design eines PBI-Wirts, der aus moderat verdrillten Chromophoren besteht und die Substratinversion gemäß der Konzepte der Übergangszustandsstabilisierung und Grundzustandsdestabilisierung antreibt, realisiert. Die Ergebnisse dieser Arbeit tragen zu einem besseren Verständnis der strukturspezifischen Wechselwirkungen in Wirt-Gast-Komplexen sowie der entsprechenden thermodynamischen und kinetischen Eigenschaften bei und stellen eine attraktive Blaupause für das Design neuer künstlicher Komplexsysteme mit hoher stereoelektronischer Formkomplementarität dar, um das Ziel hochentwickelter supramolekularer Rezeptoren sowie Enzym-ähnlicher Katalyse zu realisieren. KW - host-guest KW - cyclophane KW - Host-Guest Chemistry Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-315296 ER -