Published June 15, 2001 | Version v1
Journal article

Effects of pressure and magnetic field on the low-temperature conductivity of FeCl4

Description

The effects of hydrostatic pressure and magnetic field on the low-temperature conductivity of oriented polyacetylene doped with FeCl4- up to a metallic state have been investigated. It was found that the conductivity at 10 kbar is greater than that at ambient pressure by a factor of 1.3. Application of pressure suppresses the resistivity minimum at 280 K and decreases the resistivity ratio ρr=ρ(0.37 K)/ρ(300 K) from 2.4 down to 1.9. The temperature dependence of resistivity ρ(T)∼lnT at temperatures below 1 K at ambient pressure and at 10 kbar, which remains almost unaltered by a magnetic field up to 14 T. The starting temperature of the logarithmic temperature dependence shifts by a magnetic field up to higher temperatures. Transverse magnetoresistance (MR) was found to be negative, linear, and almost temperature-independent at temperatures below 2 K. The low temperature ρ(T) and MR behavior at T<1 K observed in heavily doped polyacetylene has been attributed to weak localization. We assumed that a dramatic increase of inelastic scattering due to low-energy vibrational excitation can ascribe the stronger temperature behavior of ρ(T) and MR at T greater than 2 K as a result of further suppression of weak localization due to a more effective dephasing effect. At higher temperature, the resistivity decrease is dominated by activation to additional conduction paths

Additional details

Identifiers

Publishing Information

Journal Title
Physical Review. B, Condensed Matter and Materials Physics
Journal Volume
63
Journal Issue
23
Series
The American Physical Society
Journal Page Range
p. 235209-235209.6
ISSN
1098-0121

Optional Information

Notes
Othernumber: PRBMDO000063000023235209000001; 033123PRB
Funding organization
(United States)