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Structure of spin excitations in heavily electron-doped Li0.8Fe0.2ODFeSe superconductors

Authors :
Pan, Bingying
Shen, Yao
Hu, Die
Feng, Yu
Park, J. T.
Christianson, A. D.
Wang, Qisi
Hao, Yiqing
Wo, Hongliang
Yin, Zhiping
Maier, T. A.
Zhao, Jun
Source :
Nature Communications 8, 123 (2017)
Publication Year :
2016

Abstract

Heavily electron-doped iron-selenide (HEDIS) high-transition-temperature (high-$T_{\rm{c}}$) superconductors, which have no hole Fermi pockets, but have a notably high $T_{\rm{c}}$, have challenged the prevailing $s$$_\pm$ pairing scenario originally proposed for iron pnictides containing both electron and hole pockets. The microscopic mechanism underlying the enhanced superconductivity in HEDIS remains unclear. Here, we used neutron scattering to study the spin excitations of the HEDIS material Li$_{0.8}$Fe$_{0.2}$ODFeSe ($T_{\rm{c}}$ = 41 K). Our data revealed nearly ring-shaped magnetic resonant excitations surrounding ($\pi$, $\pi$) at $\sim$ 21 meV. As the energy increased, the spin excitations assumed a diamond shape, and they dispersed outward until the energy reached $\sim$ 60 meV and then inward at higher energies. The observed energy-dependent momentum structure and twisted dispersion of spin excitations near ($\pi$, $\pi$) are analogous to those of hole-doped cuprates in several aspects, thus implying that such spin excitations are essential for the remarkably high $T_{\rm{c}}$ in these materials.<br />Comment: published version

Details

Database :
arXiv
Journal :
Nature Communications 8, 123 (2017)
Publication Type :
Report
Accession number :
edsarx.1608.01204
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/s41467-017-00162-x