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Coordination Chemistry and Structural Dynamics of a Long and Flexible Piperazine-Derived Ligand

Hawes, Chris S.; Hamilton, Sophie E.; Hicks, Jamie; Knowles, Gregory P.; Chaffee, Alan L.; Turner, David R.; Batten, Stuart R.

Authors

Sophie E. Hamilton

Jamie Hicks

Gregory P. Knowles

Alan L. Chaffee

David R. Turner

Stuart R. Batten



Abstract

A long and highly flexible internally functionalized dipyridyl ligand α,α′-p-xylylenebis(1-(4-pyridylmethylene)-piper-4-azine), L, has been employed in the synthesis of a series of coordination polymer materials with CoII, CdII, and AgI ions. In poly-[Cd(L)(TPA)] 1 and poly-[Co(L)(IPA)], 2, (TPA = terephthalate, IPA = isophthalate) the ligand adopts a similar linear conformation to that seen in the structure of the unbound molecule and provides a long (2.6 nm) metal–metal bridging distance. Due to the mismatch of edge lengths with that provided by the carboxylate coligands, geometric distortions from the regular dia and (4,4) network geometries for 1 and 2, respectively, are observed. In poly-[Ag2(CF3SO3)2(L)], 3, the ligand coordinates through both pyridine groups and two of the four piperazine nitrogen donors, forming a high-connectivity 2-dimensional network. The compound poly-[Ag2(L)](BF4)2·2MeCN, 4, a porous 3-dimensional cds network, undergoes a fascinating and rapid single-crystal-to-single-crystal rearrangement on exchange of the acetonitrile guests for water in ambient air, forming a nonporous hydrated network poly-[Ag2(L)](BF4)2·2H2O, 5, in which the well-ordered guest water molecules mediate the rearrangement of the tetrafluoroborate anions and the framework itself through hydrogen bonding. The dynamics of the system are examined in greater detail through the preparation of a kinetic product, the dioxane-solvated species poly-[Ag2(L)](BF4)2·2C4H8O2, 6, which undergoes a slow conversion to 5 over the course of approximately 16 h, a transition which can be monitored in real time. The reverse transformation can also be observed on immersing the hydrate 5 in dioxane. The structural features and physical properties of each of the materials can be rationalized based on the flexible and multifunctional nature of the ligand molecule, as well as the coordination behavior of the chosen metal ions.

Citation

Hawes, C. S., Hamilton, S. E., Hicks, J., Knowles, G. P., Chaffee, A. L., Turner, D. R., & Batten, S. R. (2016). Coordination Chemistry and Structural Dynamics of a Long and Flexible Piperazine-Derived Ligand. Inorganic Chemistry, 55(13), 6692-6702. https://doi.org/10.1021/acs.inorgchem.6b00933

Journal Article Type Article
Online Publication Date Jun 21, 2016
Publication Date Jul 5, 2016
Deposit Date May 30, 2023
Journal Inorganic Chemistry
Print ISSN 0020-1669
Electronic ISSN 1520-510X
Publisher American Chemical Society
Peer Reviewed Peer Reviewed
Volume 55
Issue 13
Pages 6692-6702
DOI https://doi.org/10.1021/acs.inorgchem.6b00933
Keywords Inorganic Chemistry; Physical and Theoretical Chemistry