118. Lim PFC, Chee LY, Chen SB, Chen B-H (2003) Study of interaction between
cetyltrimethylammonium bromide and poly(acrylic acid) by rheological measurements.
J Phys Chem B 107:6491–6496
119. Yoshida K, Dubin PL (1999) Complex formation between polyacrylic acid and cationic/
nonionic mixed micelles: effect of pH on electrostatic interaction and hydrogen bonding.
Colloids Surf A Physicochem Eng Asp 147:161–167
120. Ilekti P, Piculell L, Tournilhac F, Cabane B (1998) How to concentrate an aqueous polyelectrolyte/surfactant mixture by adding water. J Phys Chem B 102:344–351
121. Fundin J, Hansson P, Brown W, Lidegran I (1997) Poly(acrylic acid)À
cetyltrimethylammonium bromide interactions studied using dynamic and static light scattering and time-resolved fluorescence quenching. Macromolecules 30:1118–1126
122. Carnali JO (1993) (Polymer/polymer)-like phase behavior in the system
tetradecyltrimethylammonium bromide/sodium polyacrylate/water. Langmuir 9:2933–2941
123. Chiappisi L, Hoffmann I, Gradzielski M (2013) Complexes of oppositely charged polyelectrolytes and surfactants – recent developments in the field of biologically derived polyelectrolytes. Soft Matter 9:3896–3909
124. Hansson P (1998) Self-assembly of ionic surfactant in cross-linked polyelectrolyte gel of
opposite charge. A physical model for highly charged systems. Langmuir 14:2269–2277
125. Wang C, Tam KC (2002) New insights on the interaction mechanism within oppositely
charged polymer/surfactant systems. Langmuir 18:6484–6490
126. Magny B, Iliopoulos I, Zana R, Audebert R (1994) Mixed micelles formed by cationic
surfactants and anionic hydrophobically modified polyelectrolytes. Langmuir 10:3180–3187
127. Philippova OE, Hourdet D, Audebert R, Khokhlov AR (1996) Interaction of hydrophobically
modified poly(acrylic acid) hydrogels with ionic surfactants. Macromolecules 29:2822–2830
128. Bilici C, Ide S, Okay O (2017) Yielding behavior of tough semicrystalline hydrogels.
Macromolecules 50:3647–3654
129. Matsuda A, Sato J, Yasunaga H, Osada Y (1994) Order-disorder transition of a hydrogel
containing an n-alkyl acrylate. Macromolecules 27:7695–7698
130. Osada Y, Matsuda A (1995) Shape memory in hydrogels. Nature 376:219–219
131. Tanaka Y, Kagami Y, Matsuda A, Osada Y (1995) Thermoreversible transition of the tensile
modulus of a hydrogel with ordered aggregates. Macromolecules 28:2574–2576
132. Uchida M, Kurosawa M, Osada Y (1995) Swelling process and order-disorder transition of
hydrogel containing hydrophobic ionizable groups. Macromolecules 28:4583–4586
133. Platé NA, Shibaev VP (1974) Comb-like polymers. Structure and properties. J Polym Sci D
Macromol Rev 8:117–253
134. Alig I, Jarek M, Hellmann GP (1998) Restricted segmental mobility in side-chain crystalline
comblike polymers, studied by dielectric relaxation measurements. Macromolecules
31:2245–2251
135. Kurt B, Gulyuz U, Demir DD, Okay O (2016) High-strength semi-crystalline hydrogels with
self-healing and shape memory functions. Eur Polym J 81:12–23
136. Geng Y, Lin XY, Pan P, Shan G, Bao Y, Song Y, Wu ZL, Zheng Q (2016) Hydrophobic
association mediated physical hydrogels with high strength and healing ability. Polymer
100:60–68
137. Zhang H, Han D, Yan Q, Fortin D, Xia H, Zhao Y (2014) Light-healable hard hydrogels
through photothermally induced melting–crystallization phase transition. J Mater Chem A
2:13373–13379
138. Nitta K-H, Takayanagi M (2003) Novel proposal of lamellar clustering process for elucidation
of tensile yield behavior of linear polyethylenes. J Macromol Sci B Phys B42:107–126
139. Nitta K-H, Takayanagi M (1999) Role of tie molecules in the yielding deformation of isotactic
polypropylene. J Polym Sci B 37:357–368
140. Nitta K-H, Takayanagi M (2000) Tensile yield of isotactic polypropylene in terms of a
lamellar-cluster model. J Polym Sci B 38:1037–1044
How to Design Both Mechanically Strong and Self-Healable Hydrogels?
61
cetyltrimethylammonium bromide and poly(acrylic acid) by rheological measurements.
J Phys Chem B 107:6491–6496
119. Yoshida K, Dubin PL (1999) Complex formation between polyacrylic acid and cationic/
nonionic mixed micelles: effect of pH on electrostatic interaction and hydrogen bonding.
Colloids Surf A Physicochem Eng Asp 147:161–167
120. Ilekti P, Piculell L, Tournilhac F, Cabane B (1998) How to concentrate an aqueous polyelectrolyte/surfactant mixture by adding water. J Phys Chem B 102:344–351
121. Fundin J, Hansson P, Brown W, Lidegran I (1997) Poly(acrylic acid)À
cetyltrimethylammonium bromide interactions studied using dynamic and static light scattering and time-resolved fluorescence quenching. Macromolecules 30:1118–1126
122. Carnali JO (1993) (Polymer/polymer)-like phase behavior in the system
tetradecyltrimethylammonium bromide/sodium polyacrylate/water. Langmuir 9:2933–2941
123. Chiappisi L, Hoffmann I, Gradzielski M (2013) Complexes of oppositely charged polyelectrolytes and surfactants – recent developments in the field of biologically derived polyelectrolytes. Soft Matter 9:3896–3909
124. Hansson P (1998) Self-assembly of ionic surfactant in cross-linked polyelectrolyte gel of
opposite charge. A physical model for highly charged systems. Langmuir 14:2269–2277
125. Wang C, Tam KC (2002) New insights on the interaction mechanism within oppositely
charged polymer/surfactant systems. Langmuir 18:6484–6490
126. Magny B, Iliopoulos I, Zana R, Audebert R (1994) Mixed micelles formed by cationic
surfactants and anionic hydrophobically modified polyelectrolytes. Langmuir 10:3180–3187
127. Philippova OE, Hourdet D, Audebert R, Khokhlov AR (1996) Interaction of hydrophobically
modified poly(acrylic acid) hydrogels with ionic surfactants. Macromolecules 29:2822–2830
128. Bilici C, Ide S, Okay O (2017) Yielding behavior of tough semicrystalline hydrogels.
Macromolecules 50:3647–3654
129. Matsuda A, Sato J, Yasunaga H, Osada Y (1994) Order-disorder transition of a hydrogel
containing an n-alkyl acrylate. Macromolecules 27:7695–7698
130. Osada Y, Matsuda A (1995) Shape memory in hydrogels. Nature 376:219–219
131. Tanaka Y, Kagami Y, Matsuda A, Osada Y (1995) Thermoreversible transition of the tensile
modulus of a hydrogel with ordered aggregates. Macromolecules 28:2574–2576
132. Uchida M, Kurosawa M, Osada Y (1995) Swelling process and order-disorder transition of
hydrogel containing hydrophobic ionizable groups. Macromolecules 28:4583–4586
133. Platé NA, Shibaev VP (1974) Comb-like polymers. Structure and properties. J Polym Sci D
Macromol Rev 8:117–253
134. Alig I, Jarek M, Hellmann GP (1998) Restricted segmental mobility in side-chain crystalline
comblike polymers, studied by dielectric relaxation measurements. Macromolecules
31:2245–2251
135. Kurt B, Gulyuz U, Demir DD, Okay O (2016) High-strength semi-crystalline hydrogels with
self-healing and shape memory functions. Eur Polym J 81:12–23
136. Geng Y, Lin XY, Pan P, Shan G, Bao Y, Song Y, Wu ZL, Zheng Q (2016) Hydrophobic
association mediated physical hydrogels with high strength and healing ability. Polymer
100:60–68
137. Zhang H, Han D, Yan Q, Fortin D, Xia H, Zhao Y (2014) Light-healable hard hydrogels
through photothermally induced melting–crystallization phase transition. J Mater Chem A
2:13373–13379
138. Nitta K-H, Takayanagi M (2003) Novel proposal of lamellar clustering process for elucidation
of tensile yield behavior of linear polyethylenes. J Macromol Sci B Phys B42:107–126
139. Nitta K-H, Takayanagi M (1999) Role of tie molecules in the yielding deformation of isotactic
polypropylene. J Polym Sci B 37:357–368
140. Nitta K-H, Takayanagi M (2000) Tensile yield of isotactic polypropylene in terms of a
lamellar-cluster model. J Polym Sci B 38:1037–1044
How to Design Both Mechanically Strong and Self-Healable Hydrogels?
61
