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2+ -specific, injectable
metallo(hydro)gel: thixotropy and nanoscale metal-organic particles. Chem Commun
50:11690–11693
79. Kartha KK, Praveen VK, Babu SS, Cherumukkil S, Ajayaghosh A (2015) Pyridyl-amides as
a multimode self-assembly driver for the design of a stimuli-responsive p-gelator. Chem
Asian J 10:2250–2256
80. Araújo M, Díaz-Oltra S, Escuder B (2016) Triazolyl-based molecular gels as ligands for
autocatalytic “Click” reactions. Chem Eur J 22:8676–8684
81. Zhang S, Yang S, Lan J, Tang Y, Xue Y, You J (2009) Ultrasound-induced switching of
sheetlike coordination polymer microparticles to nanofibers capable of gelating solvents.
J Am Chem Soc 131:1689–1691
82. Lee HH, Jung SH, Park S, Park KM, Jung JH (2013) A metal-organic framework gel with
Cd
2+ derived from only coordination bonds without intermolecular interactions and its
catalytic ability. New J Chem 37:2330–2335
83. Roy S, Katiyar AK, Mondal SP, Ray SK, Biradha K (2014) Multifunctional
white-light-emitting metal-organic gels with a sensing ability of nitrobenzene. ACS Appl
Mater Interfaces 6:11493–11501
84. Hamilton TD, Bučar DK, Baltrusaitis J, Flanagan DR, Li Y, Ghorai S, MacGillivray LR
(2011) Thixotropic hydrogel derived from a product of an organic solid-state synthesis:
properties and densities of metal-organic nanoparticles. J Am Chem Soc 133:3365–3371
85. Xing B, Choi MF, Xu B (2002) Design of coordination polymer gels as stable catalytic
systems. Chem Eur J 8:5028–5032
86. Liu YR, He L, Zhang J, Wang X, Su CY (2009) Evolution of spherical assemblies to fibrous
networked Pd(II) metallogels from a pyridine-based tripodal ligand and their catalytic
property. Chem Mater 21:557–563
87. Liao Y, He L, Huang J, Zhang J, Zhuang L, Shen H, Su CY (2010) Magnetite
nanoparticle-supported coordination polymer nanofibers: synthesis and catalytic application
in suzuki-miyaura coupling. ACS Appl Mater Inter 2:2333–2338
88. Yan L, Gou S, Ye Z, Zhang S, Ma L (2014) Self-healing and moldable material with the
deformation recovery ability from self-assembled supramolecular metallogels. Chem
Commun 50:12847–12850
89. Yan L, Shen L, Lv M, Yu W, Chen J, Wang S, Ye Z (2015) Self-healing supramolecular
heterometallic gels based on the synergistic effect of the constituent metal ions. Chem
Commun 51:17627–17629
90. Lee H, Jung SH, Han WS, Moon JH, Kang S, Lee JY, Shinkai S (2011) A
Chromo-fluorogenic tetrazole-based CoBr 2 coordination polymer gel as a highly sensitive
and selective chemosensor for volatile gases containing chloride. Chem Eur J 17:2823–2827
91. Sutar P, Suresh VM, Maji TK (2015) Tunable emission in lanthanide coordination polymer
gels based on a rationally designed blue emissive gelator. Chem Commun 51:9876–9879
92. Kim C, Kim KY, Lee JH, Ahn J, Sakurai K, Lee SS, Jung JH (2017) Chiral supramolecular
gels with lanthanide ions: correlation between luminescence and helical pitch. ACS Appl
Mater Inter 9:3799–3807
93. Terech P, Yan M, Maréchal M, Royal G, Galvez J, Velu SK (2013) Characterization of
strain recovery and “self-healing” in a self-assembled metallo-gel. Phys Chem Chem Phys
15:7338–7344
94. Gasnier A, Royal G, Terech P (2009) Metallo-supramolecular gels based on a multitopic
cyclam bis-terpyridine platform. Langmuir 25:8751–8762
95. Kotova O, Daly R, dos Santos CM, Kruger PE, Boland JJ, Gunnlaugsson T (2015)
Cross-linking the fibers of supramolecular gels formed from a tripodal terpyridine derived
ligand with d-block metal ions. Inorg Chem 54:7735–7741
96. Kotova O, Daly R, dos Santos CM, Boese M, Kruger PE, Boland JJ, Gunnlaugsson T (2012)
Europium-directed self-assembly of a luminescent supramolecular gel from a tripodal
terpyridine-based ligand. Angew Chem Int Ed 51:7208–7212
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115
