| Literature DB >> 25075333 |
Jungeun Kim1, Akihiko Fujiwara2, Tomohiro Sawada3, Younghun Kim3, Kunihisa Sugimoto1, Kenichi Kato1, Hiroshi Tanaka4, Motoyuki Ishikado5, Shin-Ichi Shamoto6, Masaki Takata7.
Abstract
Understanding the nature of superconductivity in iron-based compounds is essential in the development of new strategies to increase T c. Using a charge density analysis based on synchrotron radiation X-ray powder diffraction data, we found that the charge carriers only accumulated in the iron layer of the superconducting phase of LaFeAsO1 - x F x at low temperatures. Analysis of the electrostatic potential distribution revealed the concerted enhancement of the electronic polarization of the As ions and the carrier redistribution. This suggests that the enhanced electronic polarization of the As ion plays an important role in inducing high T c superconductivity, and that the polaron concept, which has been previously regarded as an untenable mechanism, should be reconsidered for the description of the iron-arsenide superconducting phase.Entities:
Keywords: charge-carrier redistribution; electronic polarization; superconductivity
Year: 2014 PMID: 25075333 PMCID: PMC4086433 DOI: 10.1107/S2052252514005636
Source DB: PubMed Journal: IUCrJ ISSN: 2052-2525 Impact factor: 4.769
Figure 1F-concentration (x) dependence of the total number of electrons (b), and changes in the electron number within the Fe-centric layer (c) and intervening layer (d) at 19.5 K. (a) shows the contour map of MEM charge density at (100) (black contour lines) and (010) plane (grey contour lines) of LaFeAsO0.95F0.05. To evaluate the degree of electron accumulation within the Fe layer, the computing region was divided into two layers on the basis of the As site. Δn (≡ n − n 300 K, where n is the electron number within a layer) on each layer was normalized by the electron number (n 300 K) at room temperature.
Figure 2Electrostatic potential map with equipotential lines (a)–(c), variation of the electrostatic potential volume (V EP Fe) of the Fe atom (e) and asymmetric ratio (P 1/P 2) of electrostatic potential distribution around the As ion (f) as a function of F-content (x) at 19.5 K. T c are plotted in (g). The dashed curve around Fe in (a)–(c) is the trace of the local minimum points of electrostatic potential around the Fe atom. The minimum points, P 1 (P 2), of electrostatic potential distribution around the As ion are shown in (d) which is the one-dimensional plot of the dashed line crossing the center position of the La and the As ion. T c onset and T c s in (g) are defined by the onset temperatures of the Meissner signals and the temperatures of the structural phase transition from a tetragonal phase to an orthorhombic phase.
Figure 3Temperature dependence of the electrostatic potential volume (V EP Fe) of the Fe atom (a) and the degree of asymmetric space distribution (P 1/P 2) around the As ion (b) at x = 0.125 (red circles) and x = 0.200 (blue circles). Black circles are the data for x = 0 at 19.5 and 300 K.