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Article

Impact of Hexyl Branch Content on the Mechanical Properties and Deformation Mechanisms of Amorphous Ethylene/1-Octene Copolymers: A Molecular Dynamics Study

1
College of Chemistry and Chemical Engineering, China University of Petroleum (East China), Qingdao 266555, China
2
PetroChina Fushun Petrochemical, Fushun 113001, China
3
College of Petrochemical Engineering, Liaoning Petrochemical University, Fushun 113001, China
*
Authors to whom correspondence should be addressed.
Polymers 2024, 16(23), 3236; https://doi.org/10.3390/polym16233236
Submission received: 23 October 2024 / Revised: 16 November 2024 / Accepted: 18 November 2024 / Published: 21 November 2024
(This article belongs to the Special Issue Advanced Polymer Materials: Synthesis, Structure, and Properties)

Abstract

Ethylene/1-octene copolymers exhibit enhanced flexibility and impact resistance compared to polyethylene, which makes them well suited for applications in advanced plastics and elastomers. United-atom molecular dynamics (MD) simulations were conducted to explore the mechanical behavior and deformation mechanisms of ethylene/1-octene copolymers under uniaxial tensile loading. This study systematically examined the influence of temperature, polymer chain length, chain quantity, and strain rate, with a specific focus on how hexyl branch content impacts the mechanical properties of amorphous ethylene/1-octene copolymers. The simulation results indicate that as the branch content increases, the yield strength and elastic modulus decrease, suggesting a trade-off between flexibility and mechanical strength. Energy decomposition analysis reveals that copolymers with more branched chains undergo greater changes in van der Waals energy. Additionally, as the branch content increases, the reduction in dihedral angle energy in the strain hardening region becomes more gradual, and the rate and the extent of the transition of dihedral angles from gauche to trans conformation decrease under deformation. Ethylene/1-octene copolymers exhibit higher chain entanglement parameters compared to linear polyethylene, with these parameters increasing as the branch content rises. Moreover, increasing the branch content results in a less pronounced increase in chain orientation along the loading direction.
Keywords: ethylene/1-octene copolymer; chain branching; molecular dynamics simulation; uniaxial tension; mechanical properties ethylene/1-octene copolymer; chain branching; molecular dynamics simulation; uniaxial tension; mechanical properties
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MDPI and ACS Style

Zhang, R.; He, Q.; Yu, H.; Li, J.; Hu, Y.; Qian, J. Impact of Hexyl Branch Content on the Mechanical Properties and Deformation Mechanisms of Amorphous Ethylene/1-Octene Copolymers: A Molecular Dynamics Study. Polymers 2024, 16, 3236. https://doi.org/10.3390/polym16233236

AMA Style

Zhang R, He Q, Yu H, Li J, Hu Y, Qian J. Impact of Hexyl Branch Content on the Mechanical Properties and Deformation Mechanisms of Amorphous Ethylene/1-Octene Copolymers: A Molecular Dynamics Study. Polymers. 2024; 16(23):3236. https://doi.org/10.3390/polym16233236

Chicago/Turabian Style

Zhang, Ruijun, Qiqi He, Hongbo Yu, Junhua Li, Yuexin Hu, and Jianhua Qian. 2024. "Impact of Hexyl Branch Content on the Mechanical Properties and Deformation Mechanisms of Amorphous Ethylene/1-Octene Copolymers: A Molecular Dynamics Study" Polymers 16, no. 23: 3236. https://doi.org/10.3390/polym16233236

APA Style

Zhang, R., He, Q., Yu, H., Li, J., Hu, Y., & Qian, J. (2024). Impact of Hexyl Branch Content on the Mechanical Properties and Deformation Mechanisms of Amorphous Ethylene/1-Octene Copolymers: A Molecular Dynamics Study. Polymers, 16(23), 3236. https://doi.org/10.3390/polym16233236

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