paper

Fermi surface, pressure-induced antiferromagnetic order, and superconductivity in FeSe

arXiv:1706.05191 · doi:10.7566/JPSJ.87.014705

Abstract

The pressure dependence of the structural (), antiferromagnetic (), and superconducting () transition temperatures in FeSe is investigated on the basis of the 16-band - model. At ambient pressure, a shallow hole pocket disappears due to the correlation effect, as observed in the angular-resolved photoemission spectroscopy (ARPES) and quantum oscillation (QO) experiments, resulting in the suppression of the antiferromagnetic order, in contrast to the other iron pnictides. The orbital-polarization interaction between the Fe orbital and Se orbital is found to drive the ferro-orbital order responsible for the structural transition without accompanying the antiferromagnetic order. The pressure dependence of the Fermi surfaces is derived from the first-principles calculation and is found to well account for the opposite pressure dependences of and , around which the enhanced orbital and magnetic fluctuations cause the double-dome structure of the eigenvalue in the Eliashberg equation, as consistent with that of in FeSe.

9 pages, 8 figures

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Fermi surface, pressure-induced antiferromagnetic order, and superconductivity in FeSe · wovepaper