Login / Signup

Effect of CuO and Graphene on PTFE Microfibers: Experimental and Modeling Approaches.

Maroof A HegazyHend A EzzatIbrahim S YahiaHeba Y ZahranHanan ElhaesIslam GomaaMedhat A Ibrahim
Published in: Polymers (2022)
The surface of pure polytetrafluoroethylene (PTFE) microfibers was modified with ZnO and graphene (G), and the composite was studied using ATR-FTIR, XRD, and FESEM. FTIR results showed that two significant bands appeared at 1556 cm -1 and 515 cm -1 as indications for CuO and G interaction. The SEM results indicated that CuO and G were distributed uniformly on the surface of the PTFE microfibers, confirming the production of the PTFE/CuO/G composite. Density functional theory (DFT) calculations were performed on PTFE polymer nanocomposites containing various metal oxides (MOs) such as MgO, Al 2 O 3 , SiO 2 , TiO 2 , Fe 3 O 4 , NiO, CuO, ZnO, and ZrO 2 at the B3LYP level using the LAN2DZ basis set. Total dipole moment (TDM) and HOMO/LUMO bandgap energy ΔE both show that the physical and electrical characteristics of PTFE with OCu change to 76.136 Debye and 0.400 eV, respectively. PTFE/OCu was investigated to observe its interaction with graphene quantum dots (GQDs). The results show that PTFE/OCu/GQD ZTRI surface conductivity improved significantly. As a result, the TDM of PTFE/OCu/GQD ZTRI and the HOMO/LUMO bandgap energy ΔE were 39.124 Debye and ΔE 0.206 eV, respectively. The new electrical characteristics of PTFE/OCu/GQD ZTRI indicate that this surface is appropriate for electronic applications.
Keyphrases
  • quantum dots
  • density functional theory
  • room temperature
  • reduced graphene oxide
  • physical activity
  • sensitive detection
  • visible light
  • dna damage
  • atomic force microscopy
  • single molecule
  • crystal structure