Superconducting proximity effect to the block antiferromagnetism in KFeSe
arXiv:1111.1860 · doi:10.1103/PhysRevB.85.104506
Abstract
Recent discovery of superconducting (SC) ternary iron selenides has block antiferromagentic (AFM) long range order. Many experiments show possible mesoscopic phase separation of the superconductivity and antiferromagnetism, while the neutron experiment reveals a sizable suppression of magnetic moment due to the superconductivity indicating a possible phase coexistence. Here we propose that the observed suppression of the magnetic moment may be explained due to the proximity effect within a phase separation scenario. We use a two-orbital model to study the proximity effect on a layer of block AFM state induced by neighboring SC layers via an interlayer tunneling mechanism. We argue that the proximity effect in ternary Fe-selenides should be large because of the large interlayer coupling and weak electron correlation. The result of our mean field theory is compared with the neutron experiments semi-quantitatively. The suppression of the magnetic moment due to the SC proximity effect is found to be more pronounced in the d-wave superconductivity and may be enhanced by the frustrated structure of the block AFM state.
6 pages, 6 figures
References in corpus (22)
- Magnetic Order versus superconductivity in the Iron-based layered La(O1-xFx)FeAs systems
- Incommensurate magnetic order in the alpha-Fe(Te,Se) superconductor systems
- First-order magnetic and structural phase transitions in FeSeTe
- Heavily electron-doped electronic structure and isotropic superconducting gap in AxFe2Se2 (A=K,Cs)
- Fe-based high temperature superconductivity with Tc=31K bordering an insulating antiferromagnet in (Tl,K)FexSe2 Crystals
- A Novel Large Moment Antiferromagnetic Order in K0.8Fe1.6Se2 Superconductor
- Synthesis and crystal growth of Cs0.8(FeSe0.98)2: a new iron-based superconductor with Tc=27K
- Bi-collinear antiferromagnetic order in the tetragonal -FeTe
- Phase Separation and Magnetic Order in K-doped Iron Selenide Superconductor
- Antiferromagnetic superexchange interactions in LaOFeAs
- Microstructure and Fe-vacancy ordering in the KFexSe2 superconducting system
- Unified Picture for Magnetic Correlations in Iron-Based Superconductors
- Coexistence of Magnetism and Superconductivity in the Iron-based Compound Cs_0.8(FeSe_0.98)_2
- Electronic identification of the actual parental phase of KxFe2-ySe2 superconductor and its intrinsic mesoscopic phase separation
- Nanoscale phase separation of antiferromagnetic order and superconductivity in KFeSe
- Electronic structures and magnetic orders of Fe-vacancies ordered ternary iron selenides TlFeSe and AFeSe (A=K, Rb, or Cs)
- Ternary iron selenide KFeSe is an antiferromagnetic semiconductor
- Mott transition in Modulated Lattices and Parent Insulator of (K,Tl)yFexSe2 Superconductors
- 77Se NMR Investigation of the K(x)Fe(2-y)Se(2) High Tc Superconductor (Tc=33K)
- Block Spin Ground State and 3-Dimensionality of (K,Tl)FeSe
- Theory for superconductivity in (Tl,K)FeSe as a doped Mott insulator
- The spin excitations of the block-antiferromagnetic KFeSe
Cited by in corpus (5)
- The Unexpected Properties of Alkali Metal Iron Selenide Superconductors
- Optical conductivity of iron-based superconductors
- Intrinsic high-temperature superconductivity in ternary iron selenides
- Dynamic approach to finite-temperature magnetic phase transitions in the extended J1- J2 model with vacancy order
- Suppression of the antiferromagnetic order when approaching the superconducting state in a phase-separated crystal of KFeSe