APS March Meeting 2014
Volume 59, Number 1
Monday–Friday, March 3–7, 2014;
Denver, Colorado
Session B13: Focus Session: Fe-Based Superconductors-1111's,122's
11:15 AM–2:15 PM,
Monday, March 3, 2014
Room: 207
Sponsoring
Unit:
DMP
Chair: Athena Sefat, Oak Ridge National Laboratory
Abstract ID: BAPS.2014.MAR.B13.1
Abstract: B13.00001 : A Study of Hydrogen Anion Substitution in 1111-type Iron Arsenides
11:15 AM–11:51 AM
Preview Abstract
Abstract
Author:
Hideo Hosono
(Tokyo Institute of Technology)
Hydrogen is the simplest bipolar element and its valence state can be
controlled from $+$1 to $-$1. We have synthesized the 1111-type iron
arsenides CaFeAsH and LnFeAsO1$-$xHx (Ln $=$ lanthanide; 0 $\le $ x $\le $
0.5) with the ZrCuSiAs type structure by a high-pressure synthesis method.
The position and valence state of the substituted H were determined by
neutron diffraction and density functional theory calculations. The close
similarity in the structural and electrical properties of CaFeAsH and
CaFeAsF indicated the formation of the hydride ion (H$-)$, which is
isovalent with the fluoride ion (F$-)$, in the 1111-type iron arsenides.
When some of the O2$-$ ions in LnFeAsO are replaced by H$-$,
superconductivity is induced by electron doping to the FeAs-layer to
maintain charge neutrality. Since the substitution limit of hydrogen in
LnFeAsO (x $\approx $ 0.5) is much higher than that of fluorine (x $\approx
$ 0.2), the hydrogen substitution technique provides an effective pathway
for high-density electron-doping, making it possible to draw the complete
electronic phase diagram of LnFeAsO. The x-T diagrams of LnFeAsO$_{1-x}$H$_x$ (Ln
$=$ La, Ce, Sm, Gd) have a wide superconducting (SC) region spanning the
range x $=$ 0.04 to 0.4, which is far from the parent antiferromagnetic
region near x $=$ 0.0. For LaFeAsO$_{1-x}$H$_x$, another SC dome region was found
in the range x $=$ $\sim$ 0.2 to $\sim$ 0.5 with a maximum
Tc $=$ 36 K, in addition to a conventional SC dome located at x
$\sim$ 0.08 with maximum Tc $=$ 29 K. Density functional theory
calculations performed for LaFeAsO$_{1-x}$H$_x$ using virtual crystal
approximation indicated that the newly observed Tc is correlated with the
appearance of degeneration of the Fe 3d bands (dxy, dyz and dzx), which is
caused not only by regularization of the tetrahedral shape of FeAs$_4$ due to
chemical pressure effects but also by selective band occupation with doped
electrons. Very recently, a new AFM phase was found around x$=$0.5,
suggesting that the double dome Tc structure reflects the presence of two
AFM phases at x$=$0 and 0,5. In this talk, I review the recent progress in
superconductivity in 1111-type iron (oxy)arsenides and related compounds
induced by hydrogen anion substitution.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2014.MAR.B13.1