TY - JOUR
T1 - How a Chain Can Be Extended While Its Bonds Are Compressed
AU - Sapir, Liel
AU - Brock, James
AU - Chen, Danyang
AU - Liao, Qi
AU - Panyukov, Sergey
AU - Rubinstein, Michael
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/7/18
Y1 - 2023/7/18
N2 - Extending polymer chains results in a positive chain tension, fch, primarily due to conformational restrictions. At the level of individual bonds, however, tension, fb, is either negative or positive and depends on both chain tension and bulk pressure. Typically, the chain and bond tension are assumed to be directly related. In specific systems, however, this dependence may not be intuitive, whereby fch increases while fb decreases; i.e., the entire chain is extended while bonds are compressed. Specifically, increasing the grafting density of a polymer brush results in chain extension along the direction perpendicular to the grafting surface while the underlying bonds are compressed. Similarly, upon compression of polymer networks, the extension of chains oriented in the “free” direction increases while their bonds are getting more compressed. We demonstrate this phenomenon in molecular dynamics simulations and explain it by the fact that the pressure contribution to fb is dominant over a wide range of network deformations and brush grafting densities.
AB - Extending polymer chains results in a positive chain tension, fch, primarily due to conformational restrictions. At the level of individual bonds, however, tension, fb, is either negative or positive and depends on both chain tension and bulk pressure. Typically, the chain and bond tension are assumed to be directly related. In specific systems, however, this dependence may not be intuitive, whereby fch increases while fb decreases; i.e., the entire chain is extended while bonds are compressed. Specifically, increasing the grafting density of a polymer brush results in chain extension along the direction perpendicular to the grafting surface while the underlying bonds are compressed. Similarly, upon compression of polymer networks, the extension of chains oriented in the “free” direction increases while their bonds are getting more compressed. We demonstrate this phenomenon in molecular dynamics simulations and explain it by the fact that the pressure contribution to fb is dominant over a wide range of network deformations and brush grafting densities.
UR - http://www.scopus.com/inward/record.url?scp=85164412905&partnerID=8YFLogxK
U2 - 10.1021/acsmacrolett.3c00097
DO - 10.1021/acsmacrolett.3c00097
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C2 - 37358336
AN - SCOPUS:85164412905
SN - 2161-1653
VL - 12
SP - 894
EP - 900
JO - ACS Macro Letters
JF - ACS Macro Letters
IS - 7
ER -