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73
121. Wu DT, Fredrickson GH (1996) Effect of architecture in the surface segregation of polymer
blends. Macromolecules 29(24):7919–7930
122. Yethiraj A (1995) Entropic and enthalpic surface segregation from blends of branched and
linear polymers. Phys Rev Lett 74(11):2018
123. Martin TB, Mongcopa KIS, Ashkar R, Butler P, Krishnamoorti R, Jayaraman A (2015)
Wetting-dewetting and dispersion aggregation transitions are distinct for polymer grafted
nanoparticles in chemically dissimilar polymer matrix. J Am Chem Soc 137(33):10624–10631
124. Martin TB, Jayaraman A (2016) Tuning the wetting–dewetting and dispersion–aggregation
transitions in polymer nanocomposites using composition of graft and matrix polymers. Mater
Res Express 3(3):034001
125. Hore MJA, Composto RJ (2012) Using miscible polymer blends to control depletion-attraction
forces between au nanorods in nanocomposite films. Macromolecules 45(15):6078–6086
126. Mangal R, Srivastava S, Archer LA (2015) Phase stability and dynamics of entangled polymer–
nanoparticle composites. Nat Commun 6:7198
127. Srivastava S, Agarwal P, Archer LA (2012) Tethered nanoparticle-polymer composites: phase
stability and curvature. Langmuir 28(15):6276–6281
128. Trombly DM, Ganesan V (2010) Curvature effects upon interactions of polymer-grafted
nanoparticles in chemically identical polymer matrices. J Chem Phys 133(15):154904
129. Smith GD, Bedrov D (2009) Dispersing nanoparticles in a polymer matrix: are long, dense
polymer tethers really necessary? Langmuir 25(19):11239–11243
130. Gao B, Arya G, Tao AR (2012) Self-orienting nanocubes for the assembly of plasmonic
nanojunctions. Nat Nanotechnol 7(7):433
131. Hasegawa R, Aoki Y, Doi M (1996) Optimum graft density for dispersing particles in polymer
melts. Macromolecules 29(20):6656–6662
132. Jayaraman A (2013) Polymer grafted nanoparticles: effect of chemical and physical heterogeneity in polymer grafts on particle assembly and dispersion. J Polym Sci Part B-Polym
Phys 51(7):524–534
133. Modica KJ, Martin TB, Jayaraman A (2017) Effect of polymer architecture on the structure and interactions of polymer grafted particles: theory and simulations. Macromolecules
50(12):4854–4866
134. Moskala EJ, Howe SE, Painter PC, Coleman MM (1984) On the role of intermolecular
hydrogen bonding in miscible polymer blends. Macromolecules 17(9):1671–1678
135. Kuo S-W, Lin C-L, Chang F-C (2002) The study of hydrogen bonding and miscibility in poly
(vinylpyridines) with phenolic resin. Polymer 43(14):3943–3949
136. Campbell K, Gurun B, Sumpter BG, Thio YS, Bucknall DG (2011) Role of conformation in
π–π interactions and polymer/fullerene miscibility. J Phys Chem B 115(29):8989–8995
137. Hayes W, Greenland BW (2015) Donor–acceptor π–π stacking interactions: from small
molecule complexes to healable supramolecular polymer networks. In: Supramolecular
polymer networks and gels, Springer, New York, pp 143–166
138. Coleman MM, Painter PC (1995) Hydrogen bonded polymer blends. Prog Polym Sci 20(1):1–
59
139. Viswanathan S, Dadmun MD (2002) Guidelines to creating a true molecular composite:
inducing miscibility in blends by optimizing intermolecular hydrogen bonding. Macromolecules 35(13):5049–5060
140. Kuo S-W (2008) Hydrogen-bonding in polymer blends. J Polym Res 15(6):459–486
141. Prusty D, Pryamitsyn V, Olvera de la Cruz M (2018) Thermodynamics of associative polymer
blends. Macromolecules 51(15):5918–5932
142. Painter PC, Park Y, Coleman MM (1989) Thermodynamics of hydrogen bonding in polymer
blends. 1. The application of association models. Macromolecules 22(2):570–579
143. Coleman MM, Pehlert GJ, Painter PC (1996) Functional group accessibility in hydrogen
bonded polymer blends. Macromolecules 29(21):6820–6831
144. Pehlert GJ, Painter PC, Veytsman B, Coleman MM (1997) Functional group accessibility
in hydrogen-bonded polymer blends. 2. Miscibility map of 2, 3-dimethylbutadiene-statvinylphenol blends with ethylene-stat-vinyl acetate. Macromolecules 30(12):3671–3677
73
121. Wu DT, Fredrickson GH (1996) Effect of architecture in the surface segregation of polymer
blends. Macromolecules 29(24):7919–7930
122. Yethiraj A (1995) Entropic and enthalpic surface segregation from blends of branched and
linear polymers. Phys Rev Lett 74(11):2018
123. Martin TB, Mongcopa KIS, Ashkar R, Butler P, Krishnamoorti R, Jayaraman A (2015)
Wetting-dewetting and dispersion aggregation transitions are distinct for polymer grafted
nanoparticles in chemically dissimilar polymer matrix. J Am Chem Soc 137(33):10624–10631
124. Martin TB, Jayaraman A (2016) Tuning the wetting–dewetting and dispersion–aggregation
transitions in polymer nanocomposites using composition of graft and matrix polymers. Mater
Res Express 3(3):034001
125. Hore MJA, Composto RJ (2012) Using miscible polymer blends to control depletion-attraction
forces between au nanorods in nanocomposite films. Macromolecules 45(15):6078–6086
126. Mangal R, Srivastava S, Archer LA (2015) Phase stability and dynamics of entangled polymer–
nanoparticle composites. Nat Commun 6:7198
127. Srivastava S, Agarwal P, Archer LA (2012) Tethered nanoparticle-polymer composites: phase
stability and curvature. Langmuir 28(15):6276–6281
128. Trombly DM, Ganesan V (2010) Curvature effects upon interactions of polymer-grafted
nanoparticles in chemically identical polymer matrices. J Chem Phys 133(15):154904
129. Smith GD, Bedrov D (2009) Dispersing nanoparticles in a polymer matrix: are long, dense
polymer tethers really necessary? Langmuir 25(19):11239–11243
130. Gao B, Arya G, Tao AR (2012) Self-orienting nanocubes for the assembly of plasmonic
nanojunctions. Nat Nanotechnol 7(7):433
131. Hasegawa R, Aoki Y, Doi M (1996) Optimum graft density for dispersing particles in polymer
melts. Macromolecules 29(20):6656–6662
132. Jayaraman A (2013) Polymer grafted nanoparticles: effect of chemical and physical heterogeneity in polymer grafts on particle assembly and dispersion. J Polym Sci Part B-Polym
Phys 51(7):524–534
133. Modica KJ, Martin TB, Jayaraman A (2017) Effect of polymer architecture on the structure and interactions of polymer grafted particles: theory and simulations. Macromolecules
50(12):4854–4866
134. Moskala EJ, Howe SE, Painter PC, Coleman MM (1984) On the role of intermolecular
hydrogen bonding in miscible polymer blends. Macromolecules 17(9):1671–1678
135. Kuo S-W, Lin C-L, Chang F-C (2002) The study of hydrogen bonding and miscibility in poly
(vinylpyridines) with phenolic resin. Polymer 43(14):3943–3949
136. Campbell K, Gurun B, Sumpter BG, Thio YS, Bucknall DG (2011) Role of conformation in
π–π interactions and polymer/fullerene miscibility. J Phys Chem B 115(29):8989–8995
137. Hayes W, Greenland BW (2015) Donor–acceptor π–π stacking interactions: from small
molecule complexes to healable supramolecular polymer networks. In: Supramolecular
polymer networks and gels, Springer, New York, pp 143–166
138. Coleman MM, Painter PC (1995) Hydrogen bonded polymer blends. Prog Polym Sci 20(1):1–
59
139. Viswanathan S, Dadmun MD (2002) Guidelines to creating a true molecular composite:
inducing miscibility in blends by optimizing intermolecular hydrogen bonding. Macromolecules 35(13):5049–5060
140. Kuo S-W (2008) Hydrogen-bonding in polymer blends. J Polym Res 15(6):459–486
141. Prusty D, Pryamitsyn V, Olvera de la Cruz M (2018) Thermodynamics of associative polymer
blends. Macromolecules 51(15):5918–5932
142. Painter PC, Park Y, Coleman MM (1989) Thermodynamics of hydrogen bonding in polymer
blends. 1. The application of association models. Macromolecules 22(2):570–579
143. Coleman MM, Pehlert GJ, Painter PC (1996) Functional group accessibility in hydrogen
bonded polymer blends. Macromolecules 29(21):6820–6831
144. Pehlert GJ, Painter PC, Veytsman B, Coleman MM (1997) Functional group accessibility
in hydrogen-bonded polymer blends. 2. Miscibility map of 2, 3-dimethylbutadiene-statvinylphenol blends with ethylene-stat-vinyl acetate. Macromolecules 30(12):3671–3677
