• Medientyp: E-Artikel
  • Titel: Preparation, Crystallization Behavior, Simultaneous Spectroscopic and Rheological Characterization of Polyphenylene Sulfide/Graphene Quantum Dots Nanocomposites
  • Beteiligte: Wang, Chunyao; Li, Chen; Zhen, Weijun; Zhao, Ling; Wang, Shigang; Huang, Shengbing
  • Erschienen: Wiley, 2022
  • Erschienen in: Macromolecular Chemistry and Physics
  • Sprache: Englisch
  • DOI: 10.1002/macp.202200149
  • ISSN: 1521-3935; 1022-1352
  • Schlagwörter: Materials Chemistry ; Organic Chemistry ; Polymers and Plastics ; Physical and Theoretical Chemistry ; Condensed Matter Physics
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  • Beschreibung: <jats:title>Abstract</jats:title><jats:p>Graphene quantum dots are prepared conveniently and quickly with brown‐black humic acid as raw material by green oxidation process. The average size of GQDs is about 12 nm with a lattice spacing of 0.26 nm and GQDs have hydroxyl and carboxyl functional groups on their surface. Moreover, photoluminescence testing shows that GQDs have excellent photoluminescence properties with maximum excitation/emission wavelength at 347/478 nm. Next, polyphenylene sulfide (PPS)/GQDs nanocomposites are prepared by melt blending with GQDs and PPS. Mechanical tests show that the tensile strength and the impact strength of PPS can be greatly improved when the amount of GQDs is 0.5 wt% and tensile strength and the impact strength are increased by 53.38% and 375%, respectively. The nonisothermal crystallization of PPS/GQDs nanocomposites is investigated by differential scanning calorimetry, which shows that GQDs effectively increase the crystallization rate of PPS. The crystallization of PPS/GQDs nanocomposites during cooling are studied by Rheonaut technology analysis. The rheological results show that the storage modulus of PPS/GQDs (0.5 wt%) nanocomposites is increased by about 1.04 times than that of pure PPS, and 2D IR spectrum confirms that GQDs accelerate crystallization of PPS. Rheological studies present that GQDs have good compatibility with PPS.</jats:p>