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Articles

One three-dimensional manganese(II)-organic framework bearing hydroxylphenyl imidazole dicarboxylate ligand

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Pages 298-301 | Received 13 Feb 2015, Accepted 01 May 2016, Published online: 27 Jul 2016

References

  • Horiuchi, S.; Kumai, R.; Tokura, Y. High-temperature and pressure-induced ferroelectricity in hydrogen-bonded supramolecular crystals of anilic acids and 2,3-di(2-pyridinyl)pyrazine. J. Am. Chem. Soc. 2013, 135, 4492–4500.
  • Gallego, A.; Castillo, O.; Gómez-García, C. J.; Zamora, F.; Delgado, S. Electrical conductivity and luminescence in coordination polymers based on copper(i)-halides and sulfur-pyrimidine ligands. Inorg. Chem. 2012, 51, 718–727.
  • Roy, S. R.; Chakraborti, A. K. Supramolecular assemblies in ionic liquid catalysis for aza-michael reaction. Org. Lett. 2010, 12, 3866–3869.
  • Brown, C. J.; Miller, G. M.; Johnson, M. W.; Bergman, R. G.; Raymond, K. N. High-turnover supramolecular catalysis by a protected ruthenium(ii) complex in aqueous solution. J. Am. Chem. Soc. 2011, 133, 11964–11966.
  • Rocha, J.; Carlos, L. D.; Almeida Pas, F. A.; Ananias, D. Luminescent multifunctional lanthanides-based metal–organic frameworks. Chem. Soc. Rev. 2011, 40, 926–940.
  • Roy, S. R.; Chakraborti, A. K. Supramolecular assemblies in ionic liquid catalysis for aza-michael reaction. Org. Lett. 2010, 12, 3866–3869.
  • Pluth, M. D.; Bergman, R. G.; Raymond, K. N. Proton-mediated chemistry and catalysis in a self-assembled supramolecular host. Acc. Chem. Res. 2009, 42, 1650–1659.
  • Zeng, Y. F.; Hu, X.; Liu, F. C.; Bu, X. H. Azido-mediated systems showing different magnetic behaviors. Chem. Soc. Rev. 2009, 38, 469–472.
  • Czaja, A. U.; Trukhan, N.; Müller, U. Industrial applications of metal–organic frameworks. Chem. Soc. Rev. 2009, 38, 1284–1287.
  • Du, M.; Li, C.-P.; Liu, C.-S.; Fang. S.-M. Design and construction of coordination polymers with mixed-ligand synthetic strategy Coord. Chem. Rev. 2013, 257, 1282–1305.
  • Du, M.; Li, C.-P.; Chen, M.; Ge, Z.-W.; Wang, X.; Wang, L.; Liu, C.-S. Divergent kinetic and thermodynamic hydration of a porous Cu(II) coordination polymer with exclusive CO2 sorption selectivity. J. Am. Chem. Soc. 2014, 136, 10906–10909.
  • Liu, C.-S.; Yang, X.-G.; Hu, M.; Du, M.; Fang, S.-M. A structural paradigm for 3-periodic semiregular (46.69)-hxg net with high-symmetry hexagonal geometry, constructed from the linear [Cd2NaO6(H2O)6] SBUs and a flexible 6,6′-dithiodinicotinate linker. Chem. Commun. 2012, 48, 7459–7461.
  • Wang, S. B.; Wang, X. C. Multifunctional metal-organic frameworks for photocatalysis. Small 2015, 11, 3097–3112.
  • Cauteruccio, S.; Loos, A.; Byossi, A.; Jaimes, M. C. B.; Dova, D.; Rominger, F.; Prager, S.; Dreuw, A.; Licandro, E.; Stephen, A.; Hashmi, K. Gold(I) complexes of tetrathiaheterohelicene phosphanes. Inorg. Chem. 2013, 52, 7995–8004.
  • Das, S.; Karmakar, S.; Saha, D.; Baitalik, S. ;A Combined experimental and DFT/TD-DFT investigation of structural, electronic, and cation-induced switching of photophysical properties of bimetallic Ru(II) and Os(II) complexes derived from imidazole-4,5-dicarboxylic acid and 2,2′-bipyridine. Inorg. Chem. 2013, 52, 6860–6879.
  • Ghosh, S. K.; Bharadwaj, P. K. Coordination polymers of La(III) as bunched infinite nanotubes and their conversion into an open-framework structure. Inorg. Chem. 2005, 44, 3156–3161.
  • Ciurtin, D. M.; Smith, M. D.; Zur, H. C.; Loye. Structural diversity in the Cu(pyrazinecarboxylate)2/CdCl2 system: new one-, two- and three-dimensional mixed metal coordination polymers. Dalton Trans. 2003, 1245–1250.
  • Xiong, Z. F.; Gao, R. M.; Xie, Z. K.; Guo, B. B.; Li, L.; Zhu, Y. Y.; Li, G. Assembly of a series of MOFs based on the 2-(m-methoxyphenyl)imidazole dicarboxylate ligand. Dalton Trans. 2013, 42, 4613–4624.
  • Xiong, Z. F.; Jia, H. L.; Ma, B.; Li., G. Syntheses, Crystal structures, and properties of three Co(II) supramolecules constructed from phenyl imidazole dicarboxylates. Synth. React. Inorg. Met.-Org. Chem. 2012, 42, 1204–1210.
  • Shi, B. B.; Liu, S. S.; Guo, L.; Li, X. Q.; Li, G. Four metal–organic frameworks constructed with hydroxylphenyl imidazole dicarboxylate: Syntheses, crystal structures and properties. Polyhedron 2014, 83, 71–78.
  • Grimmett, M. R. Product class 3: imidazoles. Org. Chem. 2002, 12, 325–528.
  • Sheldrick, G. M. Acta Crystallogr. Sect. A: Found. Crystallogr. 2008, A64, 112–122.
  • Sheldrick, G. M. SHELX-97, Program for the solution and refinement of crystal structures; University of Gottingen, Germany, 1997.
  • Zhang, G.; Wang, Y. Diaquabis(4-carboxy-2-ethyl-1H-imidazole-5-carboxylato-κ2 N3,O4)manganese(II) N,N-dimethylformamide disolvate. Acta Crystallogr. Sect. E: Struct. Rep. Online 2011, E67, 828.
  • Li, S. J.; Miao, D. L.; Song, W. D.; Li, S. H.; Yan, J. B. Diaquabis(5-carboxy-2-propyl-1H-imidazole-4-carboxylato-κ2 N3,O4)manganese(II) 3.5-hydrate. Acta Crystallogr. Sect. E: Struct. Rep. Online 2010, E66, 1096–1097.
  • Yan, J. B.; Li, S. J.; Song, W. D.; Wang, H.; Miao, D. L. Diaquabis(5-carboxy-2-propyl-1H-imidazole-4-carboxylato-κ2 N3,O4)manganese(II) N,N-dimethylformamide disolvate. Acta Crystallogr. Sect. E: Struct. Rep. Online 2010, E66, 99.
  • Song, J. F.; Zhou, R. S.; Hu, T. P.; Chen, Z.; Wang, B. B. Three new coordination complexes based on 2-methyl-4,5-imidazoledicarboxylic acid varying from zero- to two-dimensionality. J. Coord. Chem. 2010, 63, 4201–4214.
  • Lu, W. G.; Gu, J. Z.; Jiang, L.; Tan, M. Y.; Lu, T. B. Achiral and chiral coordination polymers containing helical chains: the chirality transfer between helical chains. Cryst. Growth Des. 2008, 8, 192–199.

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