AI Article Synopsis

  • Research indicates that polymer chains near free surfaces show enhanced dynamics compared to those in the bulk.
  • The study focused on poly(tetrafluoroethylene) (PTFE) using muon-spin-relaxation spectroscopy to observe the behavior of implanted muons.
  • Results showed that muons implanted at low energy (2.0 keV) exhibited a higher relaxation rate at temperatures up to 150 K, suggesting increased mobility of polymer chains near the surface compared to the bulk material.

Article Abstract

The results of many experiments on polymers such as polystyrene indicate that the polymer chains near a free surface exhibit enhanced dynamics when compared with the bulk. We have investigated whether this is the case for poly(tetrafluoroethylene) (PTFE) by using zero-field muon-spin-relaxation spectroscopy to characterize a local probe, the F-Mu(+)-F state, which forms when spin-polarized positive muons are implanted in PTFE. Low-energy muons (implantation energies from 2.0 to 23.0 keV) were used to study the F-Mu(+)-F state between ∼ 23 and 191 nm from the free surface of PTFE. Measurements were also made with surface muons (4.1 MeV) where the mean implantation depth is on the order of ∼ 0.6 mm. The relaxation rate of the F-Mu(+)-F state up to ∼ 150 K was found to be significantly higher for muons implanted at 2.0 keV than for higher implantation energies, which suggests that the polymer chains in a region on the order of a few tens of nanometers from the free surface are more mobile than those in the bulk.

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Source
http://dx.doi.org/10.1103/PhysRevE.89.022605DOI Listing

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