REFERENCES
(1) Bazzicalupi, C.; Caltagirone, C.; Cao, Z. F.; Chen, Q. B.; Natale, C. D.; Garau, A.; Lippolis, V.; Lvova, L.; Liu, H. L.; Paolesse, R.; Zaccheroni, N. Multimodal use of new coumarin-based fluorescent chemosensors: towards highly selective optical sensors for Hg2+ probing. Chem. Eur. J. 2013, 19, 14639–14653.
(2) Venkatramaiah, N.; Firmino, D. G.; Paz, F. A.; Tome, J. P. C. Fast detection of nitroaromatics using phosphonate pyrene motifs as dual chemosensors. Chem. Commun. 2014, 50, 9683–9686.
(3) Hu, Z. C.; Tan, K.; Li, J.; Lustig, W. P.; Wang, H.; Zhao, Y. G.; Zheng, C.; Banerjee, D.; Emge, T. J.; Chabal, Y. J.; Li, J. Effective sensing of RDX via instant and selective detection of ketone vapors. Chem. Sci 2014, 5, 4873–4877.
(4) Li, L. J.; Bell, J. G.; Tang, S.; Lv, X. X.; Wang, C.; Xing, Y. L.; Zhao, X. B.; Thomas, K. M. Gas storage and diffusion through nanocages and windows in porous metal-organic famework Cu2(2,3,5,6-tetramethylbenzene-1,4-diisophthalate)(H2O)2. Chem. Mater. 2014, 26, 4679–4695.
(5) Wang, C.; Liu, D. M.; Lin, W. B. Metal-organic frameworks as a tunable platform for designing functional molecular materials. J. Am. Chem. Soc. 2013, 135, 13222–13234.
(6) Mason, J. A.; Veenstra, M.; Long, J. R. Evaluating metal-organic frameworks for natural gas storage. Chem. Sci. 2014, 5, 32–51.
(7) Wang, D. M.; Zhao, T. T.; Cao, Y.; Yao, S.; Li, G. H.; Huo, Q. S.; Liu, Y. L. High performance gas adsorption and separation of natural gas in two micro-porous metal-organic frameworks with ternary building units. Chem. Commun. 2014, 50, 8648–8650.
(8) Torres-Knoop, A.; Krishna, R.; Dubbeldam, D. Separating xylene isomers by commensurate stacking of p-xylene within channels of MAF-X8. Angew. Chem. Int. Ed. 2014, 53, 7774–7778.
(9) Warren, J. E.; Perkins, C. G.; Jelfs, K. E.; Boldrin, P.; Chater, P. A.; Miller, G. J.; Manning, T. D.; Briggs, M. E.; Stylianou, K. C.; Claridge, J. B.; Rosseinsky, M. J. Shape selectivity by guest-driven restructuring of a porous material. Angew. Chem. Int. Ed. 2014, 53, 4592–4596.
(10) Talin, A. A.; Centrone, A.; Ford, A. C.; Foster, M. E.; Stavila, V.; Haney, P.; Kinney, R. A.; Szalai, V.; Gabaly, F. E.; Yoon, H. P.; Allendorf, M. D. Tunable electrical conductivity in metal-organic framework thin-film devices. Science 2014, 343, 66–69.
(11) Cai, S. L.; Zhang, Y. B.; Pun, A. B.; Yang, J. H.; Toma, F. M.; Sharp, L. D.; Yaghi, O. M.; Fan, J.; Zheng, S. R.; Zhang, W. G.; Liu, Y. Tunable electrical conductivity in oriented thin films of tetrathiafulvalene-based covalent organic framework. Chem. Sci. 2014, 5, 4693–4700.
(12) Delgado-Martínez, P.; Gómez-García, C. J.; Jiménez-Aparicio, R.; Priego J. L.; Torres, M. R. Structural, magnetic and electrical properties of one-dimensional tetraamidatodiruthenium compounds. Dalton Trans. 2014, 43, 3227–3237.
(13) Pang, L. Y.; Yang, G. P.; Jin, J. C.; Kang, M.; Fu, A. Y.; Wang, Y. Y. A rare L1D + R1D → 3D luminescent dense polymer as multifunctional sensor to nitro aromatic compounds, Cu2+, and bases. Cryst. Growth Des. 2014, 14, 2954–2961.
(14) Huang, M. R.; Ding, Y. B.; Li, X. G. Combinatorial screening of potentiometric Pb(II) sensors from polysulfoaminoanthraquinone solid ionophore. ACS Comb. Sci. 2014, 16, 128–138.
(15) Cao, W.; Zheng, X. J.; Sun, J. P.; Wong, W. T.; Fang, D. C.; Zhang, J. X. A highly selective chemosensor for Al(III) and Zn(II) and its coordination with metal ions. Inorg. Chem. 2014, 53, 3012–3021.
(16) Qin, L.; Zhang, Z.; Zheng, Z. P.; Speldrich, M.; Kögerler, P.; Xue, W.; Wang, B. Y.; Chen, X. M.; Zheng, Y. Z. Dynamic magnetismof an iron(II)-chlorido spin chain and its hexametallic segment. Dalton Trans. 2015, 44, 1456–1464.
(17) Arauzo, A.; Lazarescu, A.; Shova, S.; Bartolomé, E.; Cases, R.; Luzón, J.; Bartolomé, J.; Turta, C. Structural andmagnetic properties of some lanthanide (Ln = Eu(III), Gd(III)and Nd(III)) cyanoacetate polymers: field-induced slow magnetic relaxation in the Gd and Nd substitutions. Dalton Trans. 2014, 43, 12342–12356.
(18) Shang, R.; Chen, S.; Wang, Z. M.; Cao, S. A copper-formate framework showing a simple to helical antiferroelectric transition with prominent dielectric anomalies and anisotropic thermal expansion, and antiferromagnetism. Chem. Eur. J. 2014, 20, 15872–15883.
(19) Fang, Q. R.; Gu, S.; Zheng, J.; Zhuang, Z. B.; Qiu, S. L.; Yan, Y. H. 3D Microporous base-functionalized covalent organic frameworks for size-selective catalysis. Angew. Chem. Int. Ed. 2014, 53, 2878–2882.
(20) Fei, H, H.; Shin, J. W.; Meng, Y. S.; Adelhardt, M.; Sutter, J.; Meyer, K.; Cohen, S. M. Reusable oxidation catalysis using metal-monocatecholato species in a robust metal-organic framework. J. Am. Chem. Soc. 2014, 136, 4965–4973.
(21) Fuchs, M. A.; Altesleben, C.; Staudt, S. C.; Walter, O.; Zevaco, T. A.; Dinjus, E. New air-stable zinc complexes formed from cyanoacrylate- and methylenemalonate-based [N2O2]-ligands and their role as catalysts in epoxide-CO2 coupling. Catal. Sci. Technol. 2014, 4, 1658–1673.
(22) Lu, W. G.; Wei, Z. W.; Gu, Z. Y.; Liu, T. F.; Park, J.; Tian, J.; Zhang, M. W.; Zhang, Q.; Ill, T. G.; Bosch, M.; Zhou, H. C. Tuning the structure and function of metal-organic frameworks via linker design. Chem. Soc. Rev. 2014, 43, 5561–5593.
(23) Li, G. Q.; Kobayashi, H.; Kusada, K.; Taylor, J. M.; Kubota, Y.; Kato, K.; Takata, M.; Yamamoto, T.; Matsumura, S.; Kitagawa, H. An ordered bcc CuPd nanoalloy synthesised via the thermal decomposition of Pd nanoparticles covered with a metal-organic framework under hydrogen gas. Chem. Commun. 2014, 50, 13750–13753.
(24) Yang, D. L.; Zhang, X.; Yao, Y. G.; Zhang, J. Structure versatility of coordination polymers constructed from a semirigid ligand and polynuclear metal clusters. CrystEngComm. 2014, 16, 8047–8057.
(25) Zhang, C. L.; Zhang, M. D.; Qin, L.; Zheng, H. G. Crystal structures and spectroscopic properties of metal-organic frameworks based on rigid ligands with flexible functional groups. Cryst. Growth Des. 2014, 14, 491–499.
(26) Lin, Z. J.; Hong, M. C.; Cao, R. Metal-organic frameworks based on flexible ligands (FL-MOFs): structures and applications. Chem. Soc. Rev. 2014, 43, 5867–5895.
(27) Wang, H.; Liu, J. Q.; Zhang, Y. N.; Wang, Y. Y.; Wen, G. L.; Guo, C. Y.; Shi, Q. Z. A novel 3D supramolecular inorganic-metal-organic architecture with honeycomb-like motifs directed by the water tetramer and sulfate anion. Inorg. Chem. Comm. 2008, 11, 129–133.
(28) Huang, W. H.; Hou, L.; Liu, B.; Cui, L.; Wang, Y. Y.; Shi, Q. Z. Two novel interpenetrating MOFs constructed from a derivative of phenanthroline and a V-shaped flexible dicarboxylate ligand contains unique chiral structure. Inorg. Chim. Acta 2012, 382, 13–18.
(29) Liu, J. Q.; Zhang, Y. N.; Wang, Y. Y.; Jin, J. C.; Lermontova, E. K.; Shi, Q. Z. Interplay of coordinative and supramolecular interactions in formation of a series of metal-organic complexes bearing diverse dimensionalities. Dalton Trans. 2009, 27, 5365–5378.
(30) Ma, L. F.; Wang, L. Y.; Wang, Y. Y.; Yang, G. P. Syntheses, structures, and photoluminescence of a series of d10 coordination polymers with R-isophthalate (R = -OH,-CH3, and -C(CH3)3). Cryst. Growth Des. 2009, 9, 5334–5342.
(31) Zhang, W. H.; Dong, Z.; Wang, Y. Y.; Hou, L.; Jin, J. C.; Huang, W. H.; Shi, Q. Z. Synthesis, structural diversity and fluorescent characterisation of a series of d10 metal-organic frameworks (MOFs): reaction conditions, secondary ligand and metal effects. Dalton Trans. 2011, 40, 2509–2521.
(32) Zhang, Y. N.; Liu, P.; Wang, Y. Y.; Wu, L. Y.; Pang, L. Y.; Shi, Q. Z. Syntheses and crystal structures of a series of Zn(II)/Cd(II) coordination polymers constructed from a flexible 6,6΄-dithiodinicotinic acid. Cryst. Growth Des. 2011, 11, 1531–1541.
(33) Sheldrick, G. M. SHELXS-97, Program for Crystal Structure Solution. University of Göttingen, Germany 1997.
(34) Sheldrick, G. M. SHELXL-97, Program for Crystal Structure Refinement. University of Göttingen, Germany 1997. |