TY - JOUR
T1 - Highly Stretchable Polymers
T2 - Mechanical Properties Improvement by Balancing Intra- and Intermolecular Interactions
AU - Galant, Or
AU - Bae, Suwon
AU - Silberstein, Meredith N.
AU - Diesendruck, Charles E.
N1 - Funding Information: O.G. and S.B. contributed equally to this work. This material is based on work supported by Israel Science Foundation (grant 920/15) and the Jacobs Technion-Cornell Institute Ruch Exchange Program and work which used Extreme Science and Engineering Discovery Environment (XSEDE) Stampede 2 cluster through allocation TG-MSS140006, which is supported by National Science Foundation grant ACI-1548562. This work made use of the Cornell Center for Materials Research Facilities supported by the National Science Foundation under award number DMR-1120296. Publisher Copyright: © 2019 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2020/5/1
Y1 - 2020/5/1
N2 - The mechanical properties of polymers are highly dependent on the mobility of the underlying chains. Changes in polymer architecture can affect inter- and intramolecular interactions, resulting in different chain dynamics. Herein, an enhancement in the mechanical properties of poly(butylmethacrylate) is induced by folding the polymer chains through covalent intramolecular crosslinking (CL). Intramolecular CL causes an increase in intramolecular interactions and inhibition of intermolecular interactions. In both the glassy and rubbery states, this molecular rearrangement increases material stiffness. In the glassy state, this molecular rearrangement also leads to reduced failure strain, but surprisingly, in the rubbery state, the large strain elasticity is actually increased. An intermediate intramolecular CL degree, where there is a balance between intra- and intermolecular interactions, shows optimal mechanical properties. Molecular dynamics simulations are used to confirm and provide molecular mechanisms to explain the experimental results.
AB - The mechanical properties of polymers are highly dependent on the mobility of the underlying chains. Changes in polymer architecture can affect inter- and intramolecular interactions, resulting in different chain dynamics. Herein, an enhancement in the mechanical properties of poly(butylmethacrylate) is induced by folding the polymer chains through covalent intramolecular crosslinking (CL). Intramolecular CL causes an increase in intramolecular interactions and inhibition of intermolecular interactions. In both the glassy and rubbery states, this molecular rearrangement increases material stiffness. In the glassy state, this molecular rearrangement also leads to reduced failure strain, but surprisingly, in the rubbery state, the large strain elasticity is actually increased. An intermediate intramolecular CL degree, where there is a balance between intra- and intermolecular interactions, shows optimal mechanical properties. Molecular dynamics simulations are used to confirm and provide molecular mechanisms to explain the experimental results.
KW - chain dynamics
KW - intramolecular collapse
KW - mechanical properties
KW - molecular dynamics
KW - thermoplastics
UR - https://www.scopus.com/pages/publications/85064615260
U2 - 10.1002/adfm.201901806
DO - 10.1002/adfm.201901806
M3 - Article
SN - 1616-301X
VL - 30
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 18
M1 - 1901806
ER -