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86. Cornwell DJ, Okesola BO, Smith DK (2013) Hybrid polymer and low molecular weight gels
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87. Cornwell DJ, Okesola BO, Smith DK (2014) Multidomain hybrid hydrogels: spatially
resolved
photopatterned
synthetic
nanomaterials
combining
polymer
and
low-molecular-weight gelators. Angew Chem 126(46):12669–12673. https://doi.org/10.
1002/ange.201405098
88. Li P, Dou X-Q, Feng C-L, Zhang D (2013) Mechanical reinforcement of C2-phenyl-derived
hydrogels for controlled cell adhesion. Soft Matter 9(14):3750–3757. https://doi.org/10.1039/
C3SM27727E
89. Huang R, Qi W, Feng L, Su R, He Z (2011) Self-assembling peptide-polysaccharide hybrid
hydrogel as a potential carrier for drug delivery. Soft Matter 7(13):6222–6230. https://doi.org/
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dynamic covalent Trithiocarbonate cross-linker. Macromolecules 43(9):4355–4361. https://
doi.org/10.1021/ma100378r
74. Amamoto Y, Otsuka H, Takahara A, Matyjaszewski K (2012) Changes in network structure
of chemical gels controlled by solvent quality through photoinduced radical reshuffling
reactions of Trithiocarbonate units. ACS Macro Lett 1(4):478–481. https://doi.org/10.1021/
mz300070t
75. Cornwell DJ, Smith DK (2015) Expanding the scope of gels—combining polymers with
low-molecular-weight gelators to yield modified self-assembling smart materials with high-tech
applications. Mater Horizons 2(3):279–293. https://doi.org/10.1039/C4MH00245H
76. de Loos M, van Esch J, Stokroos I, Kellogg RM, Feringa BL (1997) Remarkable stabilization
of self-assembled organogels by polymerization. J Am Chem Soc 119(51):12675–12676.
https://doi.org/10.1021/ja972899z
77. Eimura H, Yoshio M, Shoji Y, Hanabusa K, Kato T (2012) Liquid-crystalline gels exhibiting
electrooptical light scattering properties: fibrous polymerized network of a lysine-based
gelator having acrylate moieties. Polym J 44(6):594–599
78. George M, Weiss RG (2003) Low molecular-mass gelators with Diyne functional groups and
their unpolymerized and polymerized gel assemblies. Chem Mater 15(15):2879–2888. https://
doi.org/10.1021/cm034099v
79. Kim C, Lee SJ, Lee IH, Kim KT, Song HH, Jeon H-J (2003) Stabilization of supramolecular
nanostructures induced by self-assembly of dendritic building blocks. Chem Mater 15
(19):3638–3642. https://doi.org/10.1021/cm021087l
80. Moffat JR, Coates IA, Leng FJ, Smith DK (2009) Metathesis within self-assembled gels:
transcribing nanostructured soft materials into a more robust form. Langmuir 25(15):8786–
8793. https://doi.org/10.1021/la900282k
81. Díaz DD, Rajagopal K, Strable E, Schneider J, Finn MG (2006) “Click” chemistry in a
supramolecular environment: stabilization of organogels by Copper(I)-catalyzed azide
−alkyne [3+2] cycloaddition. J Am Chem Soc 128(18):6056–6057. https://doi.org/10.1021/
ja061251w
82. Piepenbrock MOM, Clarke N, Foster JA, Steed JW (2011) Anion tuning and polymer
templating in a simple low molecular weight organogelator. Chem Commun 47(7):2095–
2097. https://doi.org/10.1039/C0CC03439H
83. Kolb HC, Finn MG, Sharpless KB (2001) Click chemistry: diverse chemical function from a
few good reactions. Angew Chem Int Ed 40(11):2004–2021
84. Dasgupta D, Srinivasan S, Rochas C, Ajayaghosh A, Guenet JM (2009) Hybrid thermoreversible gels from covalent polymers and organogels. Langmuir 25(15):8593–8598. https://
doi.org/10.1021/la804185q
85. Wang J, Wang H, Song Z, Kong D, Chen X, Yang Z (2010) A hybrid hydrogel for efficient
removal of methyl violet from aqueous solutions. Colloids Surf B Biointerfaces 80(2):155–
160. https://doi.org/10.1016/j.colsurfb.2010.05.042
86. Cornwell DJ, Okesola BO, Smith DK (2013) Hybrid polymer and low molecular weight gels
—dynamic two-component soft materials with both responsive and robust nanoscale
networks. Soft Matter 9(36):8730–8736. https://doi.org/10.1039/C3SM51967H
87. Cornwell DJ, Okesola BO, Smith DK (2014) Multidomain hybrid hydrogels: spatially
resolved
photopatterned
synthetic
nanomaterials
combining
polymer
and
low-molecular-weight gelators. Angew Chem 126(46):12669–12673. https://doi.org/10.
1002/ange.201405098
88. Li P, Dou X-Q, Feng C-L, Zhang D (2013) Mechanical reinforcement of C2-phenyl-derived
hydrogels for controlled cell adhesion. Soft Matter 9(14):3750–3757. https://doi.org/10.1039/
C3SM27727E
89. Huang R, Qi W, Feng L, Su R, He Z (2011) Self-assembling peptide-polysaccharide hybrid
hydrogel as a potential carrier for drug delivery. Soft Matter 7(13):6222–6230. https://doi.org/
10.1039/C1SM05375B
References
189
