| Literature DB >> 28507123 |
Soshi Iimura1, Hiroshi Okanishi1, Satoru Matsuishi2, Haruhiro Hiraka3, Takashi Honda4, Kazutaka Ikeda4, Thomas C Hansen5, Toshiya Otomo4,6, Hideo Hosono7,2.
Abstract
In iron-based superconductors, high critical temperature (Tc) superconductivity over 50 K has only been accomplished in electron-doped hREFeAsO (hRE is heavy rare earth (RE) element). Although hREFeAsO has the highest bulk Tc (58 K), progress in understanding its physical properties has been relatively slow due to difficulties in achieving high-concentration electron doping and carrying out neutron experiments. Here, we present a systematic neutron powder diffraction study of 154SmFeAsO1-x D x , and the discovery of a long-range antiferromagnetic ordering with x ≥ 0.56 (AFM2) accompanying a structural transition from tetragonal to orthorhombic. Surprisingly, the Fe magnetic moment in AFM2 reaches a magnitude of 2.73 μB/Fe, which is the largest in all nondoped iron pnictides and chalcogenides. Theoretical calculations suggest that the AFM2 phase originates in kinetic frustration of the Fe-3dxy orbital, in which the nearest-neighbor hopping parameter becomes zero. The unique phase diagram, i.e., highest-Tc superconducting phase adjacent to the strongly correlated phase in electron-overdoped regime, yields important clues to the unconventional origins of superconductivity.Entities:
Keywords: antiferromagnetism; high-Tc superconductivity; iron-based superconductors; neutron scattering; oxyhydrides
Year: 2017 PMID: 28507123 PMCID: PMC5465885 DOI: 10.1073/pnas.1703295114
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205