REFERENCES
(1) Hu, Z.; Deibert, B. J.; Li, J. Luminescent metal-organic frameworks for chemical sensing and explosive detection. Chem. Soc. Rev. 2014, 43, 5815–5840.
(2) Dhakshinamoorthy, A.; Garcia, H. Metal-organic frameworks as solid catalysts for the synthesis of nitrogen-containing heterocycles. Chem. Soc. Rev. 2014, 43, 5750–5765.
(3) He, Y.; Zhou, W.; Qian, G.; Chen, B. Methane storage in metal-organic frameworks. Chem. Soc. Rev. 2014, 43, 5657–5678.
(4) Li, B.; Wen, H. M.; Zhou, W.; Chen, B. Porous metal-organic frameworks for gas storage and separation: what, how, and why? J. Phys. Chem. Lett. 2014, 5, 3468–3479.
(5) Almasi, M.; Zelenak, V.; Gyepes, R.; Zauska, L.; Bourrelly, S. A series of four novel alkaline earth metal-organic frameworks constructed of Ca(II), Sr(II), Ba(II) ions and tetrahedral MTB linker: structural diversity, stability study and low/high-pressure gas adsorption properties. RSC ADV. 2020, 10, 32323–32334.
(6) He, Y. P.; Tan, Y. X.; Zhang, J. Gas sorption, second-order nonlinear optics, and luminescence properties of a series of lanthanide-organic frameworks based on nanosized tris((4-carboxyl)phenylduryl)amine ligand. Inorg. Chem. 2013, 52, 12758–12762.
(7) Coronado, E.; Espallargas, G. M. Dynamic magnetic MOFs. Chem. Soc. Rev. 2013, 42, 1525–1539.
(8) Gu, J. Z.; Cai, Y.; Wen, M.; Shi, Z. F.; Kirillov, A. M. A new series of Cd(II) metal-organic architectures driven by soft ether-bridged tricarboxylate spacers: synthesis, structural and topological versatility, and photocatalytic properties. Dalton Trans. 2018, 47, 14327–14339.
(9) Liang, Y. C.; Cao, R.; Su, W. P.; Hong, M. C.; Zhang, W. J. Syntheses, structures, and magnetic properties of two gadolinium(III)-copper(II) coordination polymers by a hydrothermal reaction. Angew. Chem. Int. Ed. 2000, 39, 3304–3307.
(10) Lahoud, M. G.; Muniz, E. C.; Arroyos, G.; Favaro, M. A.; Davolos, M. R.; D'Vries, R. F.; Ellena, J.; Freitas, R. S.; Arrighi, E.; Frem, RCG. Rare earth coordination dinuclear compounds constructed from 3,5-dicarboxypyrazolate and succinate intermetallic bridges. New J. Chem. 2016, 40, 5338–5346.
(11) Hou, J. J.; Zhang, R.; Qin, Y. L.; Zhang, X. M. From (3,6)-connected kgd, chiral anh to (3,8)-connected tfz-d nets in low nuclear metal cluster-based networks with triangular pyridinedicarboxylate ligand. Cryst. Growth Des. 2013, 13, 1618–1625.
(12) Wang, H. M.; Yang, Y. Y.; Zeng, C. H.; Chu, T. S.; Zhu, Y. M.; Ng, S. W. A highly luminescent terbium-organic framework for reversible detection of mercury ions in aqueous solution. Photochem. Photobial. Sci. 2013, 12, 1700–1706.
(13) Han, Y.; Xu, H.; Liu, Y.; Li, H.; Hou, H.; Fan, Y.; Batten, S. R. Temperature-dependent capture of water molecules by saddle-shaped hexanuclear carboxylate cycloclusters in a (3,18)-connected metal-organic framework. Chem. Eur. J. 2012, 18, 13954–13958.
(14) Liu, B.; Li, Y.; Hou, L.; Yang, G.; Wang, Y. Y.; Shi, Q. Z. Dynamic Zn-based metal-organic framework: stepwise adsorption, hysteretic desorption and selective carbon dioxide uptake. J. Mater. Chem. A 2013, 1, 6535–6538.
(15) Chen, J.; Zhang, Q.; Liu, Z. F.; Wang, S. H.; Xiao, Y.; Li, R.; Xu, J. G.; Zhao, Y. P.; Zheng, F. K.; Guo, G. C. Color tunable and near white-light emission of two solvent-induced 2D lead(II) coordination networks based on a rigid ligand 1-tetrazole-4-imidazole-benzene. Dalton Transactions. 2015, 44, 10089–10096.
(16) Sheldrick, G. M. Crystal structure refinement with SHELXL. Acta Cryst. C 2015, 71, 3–8.
(17) Spek, A. L. PLATON SQUEEZE: a tool for the calculation of the disordered solvent contribution to the calculated structure factors. Acta Cryst. C 2015, 71, 9–18.
(18) Biswas, A.; Kim, M. B.; Kim, S. Y.; Yoon, T. U.; Kim, S. I.; Bae, Y. S. A novel 3-D microporous magnesium-based metal-organic framework with open metal sites. RSC Adv. 2016, 6, 81485–81490.
(19) Allendorf, M. D.; Bauer, C. A.; Bhakta, R. K.; Houk, R. J. T. Luminescent metal-organic frameworks. Chem. Soc. Rev. 2009, 38, 1330–1352.
(20) Cui, Y.; Yue, Y.; Qian, G.; Chen, B. Luminescent functional metal-organic frameworks. Chem. Rev. 2012, 112, 1126–1162.
(21) Heine, J.; Mueller-Buschbaum, K. Engineering metal-based luminescence in coordination polymers and metal-organic frameworks. Chem. Soc. Rev. 2013, 42, 9232–9242.
(22) Fu, G.; He, Y.; Li, W.; Miao, T.; Lue, X.; He, H.; Liu, L.; Wong, W, Y. Efficient white polymer light-emitting diodes (WPLEDs) based on covalent-grafting of Zn-2(MP)(3)(OAc) into PVK. Chem Sci. 2020, 11, 2640–2646.
(23) Son, H. J.; Han, W. S.; Chun, J. Y.; Kang, B. K.; Kwon, S. N.; Ko, J.; Han, S. J.; Lee, C.; Kim, S. J.; Kang, S. O. Generation of blue light-emitting zinc complexes by band-gap control of the oxazolyl phenolate ligand system: syntheses, characterizations, and organic light emitting device applications of 4-coordinated bis(2-oxazolylphenolate) zinc(II) complexes. Inorg. Chem. 2008, 47, 5666–5676.
(24) Lu, J.; Wu, H. F.; Wang, W. F.; Xu, J. G.; Zheng, F. K.; Guo, G. C. Calcium-based efficient cathode-ray scintillating metal-organic frameworks constructed from pi-conjugated luminescent motifs. Chem. Commun. 2019, 55, 13816–13819.
(25) Yan, Y.; Chen, J.; Zhang, N. N.; Wang, M. S.; Sun, C.; Xing, X. S.; Li, R.; Xu, J. G.; Zheng, F. K.; Guo, G. C. Grinding size-dependent mechanoresponsive luminescent Cd(II) coordination polymer. Dalton Trans. 2016, 45, 18074–18078.
|