Graphene reinforced UHMWPE fibers

被引:0
作者
ZhiJing Xue [1 ]
Kenneth R. Brown [1 ]
Timothy M. Harrell [1 ]
Xiaodong Li [1 ]
机构
[1] Department of Mechanical and Aerospace Engineering, University of Virginia, 122 Engineer’s Way, Charlottesville, 22904, VA
关键词
Graphene reinforcement; Skeleton structure; Surface morphologies; Theoretical model; UHMWPE composite fibers;
D O I
10.1007/s10965-025-04319-x
中图分类号
学科分类号
摘要
Thermoplastic polymers are increasingly used in electric vehicles, hydrogen fuel cell vehicles, and other decarbonization applications due to their lightweight and formability. Higher-strength polymers are needed to supplant metals in the vehicle structure, thereby reducing mass and improving efficiency. Ultra-high molecular weight polyethylene (UHMWPE) fibers possess one of the highest strength-to-weight ratios of technical polymers, and further improvement via reinforcement by nanofillers, such as graphene, will expand their performance envelope. In this work, UHMWPE/graphene nanocomposite fibers were gel spun and characterized for their morphological, microstructural, thermal, and mechanical properties. The addition of a low fraction of graphene improved the tensile strength of the fibers by 25% and tensile modulus by 32%. Differential scanning calorimetry showed an increase in melting temperature and degree of crystallinity, which indicates improved coordination of the molecular chains induced by the addition of graphene. The reinforcement also affected the cross-sectional shape of the fibers; the aspect ratio of the fibers’ elliptical shape declined with increasing graphene content showing the skeletal effect of the graphene nanofillers in the polymer matrix. The reinforcing effect of graphene declined above a threshold concentration, and theoretical modeling was applied to demonstrate that increased agglomerates led to reduced properties. This work demonstrates a simple, effective method to produce graphene-reinforced UHMWPE fibers and lays a foundation for understanding the potential for leveraging graphene to form ultra-high-performance nanocomposite fibers for myriad engineering applications. © The Polymer Society, Taipei 2025.
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  • [1] Gupta P., Toksha B., Patel B., Et al., Recent Developments and Research Avenues for Polymers in Electric Vehicles, Chem Rec, 22, 11, (2022)
  • [2] Golzar M., Poorzeinolabedin M., Prototype fabrication of a composite automobile body based on integrated structure, Int J Adv Manuf Tech, 49, pp. 1037-1045, (2010)
  • [3] Sarfraz M.S., Hong H., Kim S.S., Recent developments in the manufacturing technologies of composite components and their cost-effectiveness in the automotive industry: A review study, Compos Struct, 266, (2021)
  • [4] Akca E., Gursel A., A Review on the Matrix Toughness of Thermoplastic Materials, PEN, 3, 2, (2015)
  • [5] Faruk O., Yang Y., Zhang J., Et al., A Comprehensive Review of Ultrahigh Molecular Weight Polyethylene Fibers for Applications Based on Their Different Preparation Techniques, Adv Polym Tech, (2023)
  • [6] Chhetri S., Bougherara H., A comprehensive review on surface modification of UHMWPE fiber and interfacial properties, Compos Part A Appl Sci Manuf, 140, pp. 106-146, (2021)
  • [7] Samad M.A., Recent advances in uhmwpe/uhmwpe nanocomposite/uhmwpe hybrid nanocomposite polymer coatings for tribological applications: A comprehensive review, Polymers, 13, 4, (2021)
  • [8] Dos Santos Alves A.L., Nascimento L.F.C., Suarez J.C.M., Influence of weathering and gamma irradiation on the mechanical and ballistic behavior of UHMWPE composite armor, Polym Test, 24, 1, pp. 104-113, (2005)
  • [9] Li J., Wu C., Liu Z.X., Comparative evaluation of steel wire mesh, steel fibre and high performance polyethylene fibre reinforced concrete slabs in blast tests, Thin-Walled Struct, 126, pp. 117-126, (2018)
  • [10] Hsieh Y.-L., Ju J., Melting Behavior of Ultra-High Modulus and Molecular Weight Polyethylene (UHMWPE) Fibers, J Appl Polym Sci, 53, 3, pp. 347-354, (1994)