: Metal-organic cages (MOCs) are popular host architectures assembled from ligands and metal ions/nodes. Assembling structurally complex, low-symmetry MOCs with anisotropic cavities can be limited by the formation of statistical isomer libraries. We set out to investigate the use of primary coordination-sphere engineering (CSE) to bias isomer selectivity within homo- and heteroleptic PdnL2n cages. Unexpected differences in selectivities between alternative donor groups led us to recognise the significant impact of the second coordination sphere on isomer stabilities. From this, molecular-level insight into the origins of selectivity between cis and trans diastereoisomers was gained, highlighting the importance of both host-guest and host-solvent interactions, in addition to ligand design. This detailed understanding allows precision engineering of low-symmetry MOC assemblies without wholesale redesign of the ligand framework, and fundamentally provides a theoretical scaffold for the development of stimuli-responsive, shape-shifting MOCs.
Diastereoselective Self-Assembly of Low-Symmetry PdnL2n Nanocages through Coordination-Sphere Engineering / Molinska, Paulina; Tarzia, Andrew; Male, Louise; Jelfs, Kim E; Lewis, James. - In: ANGEWANDTE CHEMIE. - ISSN 1521-3773. - 62:51(2023). [10.1002/anie.202315451]
Diastereoselective Self-Assembly of Low-Symmetry PdnL2n Nanocages through Coordination-Sphere Engineering
Tarzia, Andrew;
2023
Abstract
: Metal-organic cages (MOCs) are popular host architectures assembled from ligands and metal ions/nodes. Assembling structurally complex, low-symmetry MOCs with anisotropic cavities can be limited by the formation of statistical isomer libraries. We set out to investigate the use of primary coordination-sphere engineering (CSE) to bias isomer selectivity within homo- and heteroleptic PdnL2n cages. Unexpected differences in selectivities between alternative donor groups led us to recognise the significant impact of the second coordination sphere on isomer stabilities. From this, molecular-level insight into the origins of selectivity between cis and trans diastereoisomers was gained, highlighting the importance of both host-guest and host-solvent interactions, in addition to ligand design. This detailed understanding allows precision engineering of low-symmetry MOC assemblies without wholesale redesign of the ligand framework, and fundamentally provides a theoretical scaffold for the development of stimuli-responsive, shape-shifting MOCs.File | Dimensione | Formato | |
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Angew Chem Int Ed - 2023 - Molinska - Diastereoselective Self‐Assembly of Low‐Symmetry PdnL2n Nanocages through.pdf
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Angew Chem Int Ed - 2023 - Molinska - Diastereoselective Self‐Assembly of Low‐Symmetry PdnL2n Nanocages through.pdf
accesso aperto
Tipologia:
2a Post-print versione editoriale / Version of Record
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Creative commons
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Adobe PDF
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6.09 MB | Adobe PDF | Visualizza/Apri |
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https://hdl.handle.net/11583/2983609