AI Article Synopsis

  • The study focused on the coordination capabilities of a specific ligand, bis(1,2,4-triazolyl), to create solid-state structures of copper polyoxomolybdates using a composition space diagram method.
  • Different binding modes and conformations of the ligand led to the formation of mixed metal coordination polymers which were synthesized under hydrothermal conditions.
  • Nine unique coordination compounds were characterized, displaying a variety of structures and thermal properties, with some showing interesting magnetic behaviors linked to their orbital interactions.

Article Abstract

We investigated the coordination ability of the bis(1,2,4-triazolyl) module, trpr = 1,3-bis(1,2,4-triazol-4-yl)propane, toward the engineering of solid-state structures of copper polyoxomolybdates utilizing a composition space diagram approach. Different binding modes of the ligand including [N-N]-bridging and N-terminal coordination and the existence of favorable conformation forms (anti/anti, gauche/anti, and gauche/gauche) resulted in varieties of mixed metal Cu/Mo and Cu/Mo coordination polymers prepared under hydrothermal conditions. The composition space analysis employed was aimed at both the development of new coordination solids and their crystallization fields through systematic changes of the reagent ratios [copper(II) and molybdenum(VI) oxide precursors and the trpr ligand]. Nine coordination compounds were synthesized and structurally characterized. The diverse coordination architectures of the compounds are composed of cationic fragments such as [Cu(μ-OH)(μ-tr)], [Cu(μ-tr)], [Cu(μ-tr)], etc., connected to polymeric arrays by anionic species (molybdate MoO, isomeric α-, δ-, and β-octamolybdates {MoO} or {MoOH}). The inorganic copper(I,II)/molybdenum(VI) oxide matrix itself forms discrete or low-dimensional subtopological motifs (0D, 1D, or 2D), while the organic spacers interconnect them into higher-dimensional networks. The 3D coordination hybrids show moderate thermal stability up to 230-250 °C, while for the 2D compounds, the stability of the framework is distinctly lower (∼190 °C). The magnetic properties of the most representative samples were investigated. The magnetic interactions were rationalized in terms of analyzing the planes of the magnetic orbitals.

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Source
http://dx.doi.org/10.1021/acs.inorgchem.7b01735DOI Listing

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