The mechanical properties of LDPE composite filled with CF coated by dimethylamine treated TiO2
In order to improve the surface wettability of carbon fiber and enhance its composite interface performance, dimethylamine treated TiO2 was coated on carbon fiber (CF). The surface morphology, surface chemical state, and surface wettability of CF were characterized by SEM, XPS, and TEM tests, and th...
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Published in | Surface and interface analysis Vol. 54; no. 8; pp. 909 - 917 |
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Language | English |
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01.08.2022
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Abstract | In order to improve the surface wettability of carbon fiber and enhance its composite interface performance, dimethylamine treated TiO2 was coated on carbon fiber (CF). The surface morphology, surface chemical state, and surface wettability of CF were characterized by SEM, XPS, and TEM tests, and the interlaminar shear strength (ILSS) and cross‐sectional morphology tests were used to test the performance of CF/Low density polyethylene (LDPE) composites. The interface bonding status was analyzed and characterized. The results show that after the surface treatment of CF by dimethylamine treated TiO2, the O/C (atomic ratio) of the surface of CF is increased, and a certain amount of nano‐scale small convex micro‐mechanical structure is given, which improves the surface wetting of CF. The surface of the CF modified by the TiO2 is rough; the contact area between modified CF and LDPE increases. |
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AbstractList | In order to improve the surface wettability of carbon fiber and enhance its composite interface performance, dimethylamine treated TiO2 was coated on carbon fiber (CF). The surface morphology, surface chemical state, and surface wettability of CF were characterized by SEM, XPS, and TEM tests, and the interlaminar shear strength (ILSS) and cross‐sectional morphology tests were used to test the performance of CF/Low density polyethylene (LDPE) composites. The interface bonding status was analyzed and characterized. The results show that after the surface treatment of CF by dimethylamine treated TiO2, the O/C (atomic ratio) of the surface of CF is increased, and a certain amount of nano‐scale small convex micro‐mechanical structure is given, which improves the surface wetting of CF. The surface of the CF modified by the TiO2 is rough; the contact area between modified CF and LDPE increases. |
Author | Jian, Li |
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References_xml | – volume: 9 issue: 6 year: 2020 article-title: Effect of moisture content and carbon fiber surface treatments on the interfacial shear strength of a thermoplastic‐modified epoxy resin composites publication-title: J Mater Res Technol – volume: 155 start-page: 237 year: 2018 end-page: 243 article-title: Advanced carbon fibre composites via poly methacrylic acid surface treatment; surface analysis and mechanical properties investigation publication-title: Compos Part B Eng – volume: 138 year: 2020 article-title: Generating short carbon fiber polyamide‐6 composites from continuous carbon fiber—a preliminary examination of surface treatment and sizing effects publication-title: Compos A: Appl Sci Manuf – volume: 24 year: 2020 article-title: Comparative study of the effect of fiber surface treatments on the flexural and interlaminar shear strength of carbon fiber‐reinforced composites publication-title: Mater Today Commun – volume: 39 start-page: 160 year: 2019 end-page: 166 article-title: Studies on the influence of surface treatment type, in the effectiveness of structural adhesive bonding, for carbon fiber reinforced composites publication-title: J Manuf Process – volume: 261 start-page: 473 year: 2012 end-page: 480 article-title: Influence of the carbon fiber surface microstructure on the surface chemistry generated by a thermo‐chemical surface treatment publication-title: Appl Surf Sci – volume: 119 start-page: 38 year: 2019 end-page: 47 article-title: Investigating the effects of fiber surface treatment and alignment on mechanical properties of recycled carbon fiber composites publication-title: Compos A: Appl Sci Manuf – volume: 134 start-page: 132 year: 2016 end-page: 143 article-title: Statistical optimization of treatment conditions for the electrochemical oxidation of PAN‐based carbon fiber by response surface methodology: Application to carbon fiber/epoxy composite publication-title: Compos Sci Technol – volume: 236 year: 2022 article-title: Covalent treatment of carbon fibre with functionalized MoS2 nanosheets using thiol‐ene click chemistry: The improvement of interface in multiscale epoxy composites publication-title: Compos Part B Eng – volume: 128 start-page: 215 year: 2016 end-page: 221 article-title: Optimization of plasma treatment variables for the improvement of carbon fibres/epoxy composite performance by response surface methodology publication-title: Compos Sci Technol – volume: 118 start-page: 293 year: 2019 end-page: 301 article-title: A comparison of interfacial testing methods and sensitivities to carbon fiber surface treatment conditions publication-title: Compos A: Appl Sci Manuf – volume: 65 start-page: 2189 issue: 14 year: 2005 end-page: 2197 article-title: Evaluation of fiber surface treatment and toughening of thermoset matrix on the interfacial behaviour of carbon fiber‐reinforced cyanate matrix composites publication-title: Compos Sci Technol – volume: 78 start-page: 362 year: 2015 end-page: 370 article-title: Effect of crystal morphology transition of polypropylene on interfacial properties of carbon fiber‐reinforced composites through AlOOH surface treatment publication-title: Compos A: Appl Sci Manuf – volume: 221 year: 2022 article-title: Carbon nanotube enhanced carbon Fibre‐Poly (ether ether ketone) interfaces in model hierarchical composites publication-title: Compos Sci Technol – volume: 137 start-page: 97 year: 2018 end-page: 106 article-title: Surface treatment of carbon fibres for interfacial property enhancement in composites via surface deposition of water soluble POSS nanowhiskers publication-title: Polymer – volume: 33 start-page: 2027 year: 2020 end-page: 2031 article-title: Thermal treatment as an effective method of carbon/glass fibers surface modification for high‐performance thermoplastic polymer matrix composites publication-title: Mater Today: Proc – volume: 160 start-page: 436 year: 2019 end-page: 445 article-title: The effects of plasma surface treatment on the mechanical properties of polycarbonate/carbon nanotube/carbon fiber composites publication-title: Compos Part B Eng – volume: 380 year: 2019 article-title: Investigating the effects of surface treatments on adhesion properties of protective coatings on carbon fiber‐reinforced composite laminates publication-title: Surf Coat Technol – start-page: 241 year: 2015 end-page: 246 article-title: Effect of plasma surface treatment of recycled carbon fiber on carbon fiber‐reinforced plastics (CFRP) interfacial properties publication-title: Appl Surf Sci – volume: 119 start-page: 30 year: 2019 end-page: 37 article-title: Effectiveness of flame‐based surface treatment for adhesive bonding of carbon fiber reinforced epoxy matrix composites publication-title: Compos A: Appl Sci Manuf – volume: 90 start-page: 687 year: 2016 end-page: 698 article-title: Toughening of carbon fiber‐reinforced epoxy polymer composites utilizing fiber surface treatment and sizing 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Snippet | In order to improve the surface wettability of carbon fiber and enhance its composite interface performance, dimethylamine treated TiO2 was coated on carbon... |
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SubjectTerms | active groups carbon fiber Carbon fibers dimethylamine ILSS Interfacial shear strength Low density polyethylenes Mechanical properties Morphology Surface treatment TiO2 Titanium dioxide Wettability Wetting X ray photoelectron spectroscopy |
Title | The mechanical properties of LDPE composite filled with CF coated by dimethylamine treated TiO2 |
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