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145. Pehlert GJ, Painter PC, Coleman MM (1998) Functional group accessibility in hydrogenbonded polymer blends. 3. Steric shielding effects. Macromolecules 31(23):8423–8424
146. Radmard B, Dadmun M (2001) The accessibility of functional groups to intermolecular
hydrogen bonding in polymer blends containing a liquid crystalline polymer. Polymer
42(4):1591–1600
147. Painter P, Veytsman, B, Kumar, S, Shenoy, S, Graf, J, Xu, Y, Coleman, M (1997) Intramolecular
screening effects in polymer mixtures. 1. Hydrogen-bonded polymer blends. Macromolecules
30(4):932–942
148. Rasheed A, Dadmun MD, Ivanov I, Britt PF, Geohegan DB (2006) Improving dispersion of
single-walled carbon nanotubes in a polymer matrix using specific interactions. Chem Mater
18(15):3513–3522
149. Rasheed A, Chae HG, Kumar S, Dadmun MD (2006) Polymer nanotube nanocomposites:
correlating intermolecular interaction to ultimate properties. Polymer 47(13):4734–4741
150. Karimi-Varzaneh HA, Carbone P, Müller-Plathe F (2008) Hydrogen bonding and dynamic
crossover in polyamide-66: a molecular dynamics simulation study. Macromolecules
41(19):7211–7218
151. Karimi-Varzaneh HA, Carbone P, Müller-Plathe F (2008) Fast dynamics in coarse-grained
polymer models: the effect of the hydrogen bonds. J Chem Phys 129(15):154904
152. Gowers RJ, Carbone P (2015) A multiscale approach to model hydrogen bonding: the case
of polyamide. J Chem Phys 142(22):224907
153. di Pasquale N, Marchisio D, Carbone P (2012) Mixing atoms and coarse-grained beads in
modelling polymer melts. J Chem Phys 137(16):164111
154. Kulshreshtha A, Modica KJ, Jayaraman A (2019) Impact of hydrogen bonding interactions on
graft-matrix wetting and structure in polymer nanocomposites. Macromolecules 52(7):2725–
2735
155. Lin B, Martin TB, Jayaraman A (2014) Dsecreasing polymer flexibility improves wetting and
dispersion of polymer-grafted particles in a chemically identical polymer matrix. ACS Macro
Lett 3(7):628–632
156. Martin TB, Jayaraman A (2016) Using theory and simulations to calculate effective interactions in polymer nanocomposites with polymer-grafted nanoparticles. Macromolecules
49(24):9684–9692
157. Humphrey W, Dalke A, Schulten K (1996) VMD: visual molecular dynamics. J Mol Graph
14(1):33–38
A. Jayaraman et al.
145. Pehlert GJ, Painter PC, Coleman MM (1998) Functional group accessibility in hydrogenbonded polymer blends. 3. Steric shielding effects. Macromolecules 31(23):8423–8424
146. Radmard B, Dadmun M (2001) The accessibility of functional groups to intermolecular
hydrogen bonding in polymer blends containing a liquid crystalline polymer. Polymer
42(4):1591–1600
147. Painter P, Veytsman, B, Kumar, S, Shenoy, S, Graf, J, Xu, Y, Coleman, M (1997) Intramolecular
screening effects in polymer mixtures. 1. Hydrogen-bonded polymer blends. Macromolecules
30(4):932–942
148. Rasheed A, Dadmun MD, Ivanov I, Britt PF, Geohegan DB (2006) Improving dispersion of
single-walled carbon nanotubes in a polymer matrix using specific interactions. Chem Mater
18(15):3513–3522
149. Rasheed A, Chae HG, Kumar S, Dadmun MD (2006) Polymer nanotube nanocomposites:
correlating intermolecular interaction to ultimate properties. Polymer 47(13):4734–4741
150. Karimi-Varzaneh HA, Carbone P, Müller-Plathe F (2008) Hydrogen bonding and dynamic
crossover in polyamide-66: a molecular dynamics simulation study. Macromolecules
41(19):7211–7218
151. Karimi-Varzaneh HA, Carbone P, Müller-Plathe F (2008) Fast dynamics in coarse-grained
polymer models: the effect of the hydrogen bonds. J Chem Phys 129(15):154904
152. Gowers RJ, Carbone P (2015) A multiscale approach to model hydrogen bonding: the case
of polyamide. J Chem Phys 142(22):224907
153. di Pasquale N, Marchisio D, Carbone P (2012) Mixing atoms and coarse-grained beads in
modelling polymer melts. J Chem Phys 137(16):164111
154. Kulshreshtha A, Modica KJ, Jayaraman A (2019) Impact of hydrogen bonding interactions on
graft-matrix wetting and structure in polymer nanocomposites. Macromolecules 52(7):2725–
2735
155. Lin B, Martin TB, Jayaraman A (2014) Dsecreasing polymer flexibility improves wetting and
dispersion of polymer-grafted particles in a chemically identical polymer matrix. ACS Macro
Lett 3(7):628–632
156. Martin TB, Jayaraman A (2016) Using theory and simulations to calculate effective interactions in polymer nanocomposites with polymer-grafted nanoparticles. Macromolecules
49(24):9684–9692
157. Humphrey W, Dalke A, Schulten K (1996) VMD: visual molecular dynamics. J Mol Graph
14(1):33–38
