Published February 2012 | Version v1
Journal article

Anisotropic in-plane optical conductivity in detwinned Ba(Fe1-xCox)2As2

  • 1. Laboratorium für Festkörperphysik, ETH—Zürich, CH-8093 Zürich (Switzerland)
  • 2. Dipartimento di Fisica, Universitá degli Studi di Cagliari, IT-09042 Monserrato (Italy)
  • 3. Geballe Laboratory for Advanced Materials and Department of Applied Physics, Stanford University, Stanford, CA 94305-4045, USA and Stanford Institute for Materials and Energy Sciences, SLAC National Accelerator Laboratory, 2575 Sand Hill Road, Menlo Park, CA 94025 (United States)

Description

We study the anisotropic in-plane optical conductivity of detwinned Ba(Fe1-xCox)2As2 single crystals for x = 0, 2.5 and 4.5% in a broad energy range (3 meV-5 eV) across their structural and magnetic transitions. For temperatures below the Neel transition, the topology of the reconstructed Fermi surface, combined with the distinct behavior of the scattering rates, determines the anisotropy of the low-frequency optical response. For the itinerant charge carriers, we are able to disentangle the evolution of the Drude weights and scattering rates and to observe their enhancement along the orthorhombic antiferromagnetic a-axis with respect to the ferromagnetic b-axis. For temperatures above the structural phase transition, uniaxial stress induces a finite in-plane anisotropy. The anisotropy of the optical conductivity, leading to significant dichroism, extends to high frequencies in the mid- and near-infrared regions. The temperature dependence of the dichroism at all dopings scales with the anisotropy ratio of dc conductivity, suggesting the electronic nature of the structural transition. Our findings bear testimony to a large nematic susceptibility that couples very effectively to the uniaxial lattice strain. In order to clarify the subtle interplay of magnetism and Fermi surface topology we compare our results with theoretical calculations obtained from density functional theory within the full-potential linear augmented plane-wave method. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1367-2630/14/2/023020

Additional details

Publishing Information

Journal Title
New Journal of Physics
Journal Volume
14
Journal Issue
2
Journal Page Range
[20 p.]
ISSN
1367-2630