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Crystal Engineering of Molecular Networks: Tailoring Hydrogen-Bonding Self-Assembly of Tin-Tetrapyridylporphyrins with Multidentate Carboxylic Acids As Axial Ligands

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Figshare2016-02-19 更新2026-04-29 收录
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https://figshare.com/articles/dataset/Crystal_Engineering_of_Molecular_Networks_Tailoring_Hydrogen_Bonding_Self_Assembly_of_Tin_Tetrapyridylporphyrins_with_Multidentate_Carboxylic_Acids_As_Axial_Ligands/2436931
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This study reveals the self-assembly patterns of six-coordinate complexes of the tetra­(4-pyridyl)- and tetra­(3-pyriyl)-tin-porphyrin moieties (SnT4PyP and SnT3PyP, respectively) with multidentate carboxylic acids as axial ligands. Detailed structural characterization of the supramolecular organization in the resulting ordered solids by X-ray diffraction is reported. Crystals of the five new Sn­(acid)2-TPyP complexes consist of multiporphyrin polymeric chains and networks that are sustained by extensive hydrogen bonding, involving the functional substituents on the axial ligands as proton donors and the peripheral N-sites of the porphyrin as proton acceptors. The use of different ligands leads to different connectivity features of the supramolecular assemblies that form. Structures with the 5-hydroxy-isophthalic acid and trimesic acid ligands (1 and 2) reveal the formation of one-dimensional hydrogen-bonded chains only, as solvation effects prevent interporphyrin interaction in other directions. Reaction of the tin-porphyrin with 5-amino-isophthalic acid yielded a two-dimensional hydrogen-bonding network (3), while the reaction products with cis-1,3,5-cyclohexane-tricarboxylic acid (4) and 5-bromo-isophthalic acid (5) are characterized by three-dimensionally interlinked assemblies. The above examples highlight the pronounced effect of the axial ligands (A) on the hydrogen-bonding-driven supramolecular aggregation of the Sn­(A)2-TPyP building blocks in crystals.
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2016-02-19
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