First-principles Electronic Structure of Superconductor CaAlOFeP: Comparison with LaFePO and CaAlOFeAs
arXiv:1109.2054 · doi:10.1143/JPSJ.81.014701
Abstract
We investigate the electronic structures of iron-based superconductors having perovskite-like blocking layers, %CaAlOFe(AsP) from first principles. CaAlOFeP and CaAlOFeAs from first principles. CaAlOFeP is found to have two hole-like Fermi surfaces around , and one hole-like Fermi surface around M in the unfolded Brillouin zone. This is in contrast with LaFePO, where no Fermi surface is found around M. The relationship of their band structures and measured transition temperatures of superconductivity is discussed. The number of Fermi surfaces in CaAlOFeP is also different from that of CaAlOFeAs, in which only one Fermi surface is formed around . Analysis using maximally localized Wannier functions clarifies that the differences between their band structures originate mainly from the pnictogen height. We then analyze the alloying effect on the electronic structure of CaAlOFeAsP. It is found that its electronic structure is similar to that of CaAlOFeP and CaAlOFeAs with the average crystal structure, though CaAlOFeAsP contains the pnictogen height disorder. We calculate the generalized susceptibility for CaAlOFe(AsP) and clarify the factors determining its tendency.
5 figures, to be published in J. Phys. Soc. Jpn
References in corpus (16)
- Unconventional pairing originating from disconnected Fermi surfaces in superconducting LaFeAsOF}
- LaFeAsOF: A low carrier density superconductor near itinerant magnetism
- Effect of Structural Parameters on Superconductivity in Fluorine-Free LnFeAsO1-y (Ln=La,Nd)
- Dynamical Mean-Field Theory within an Augmented Plane-Wave Framework: Assessing Electronic Correlations in the Iron Pnictide LaFeAsO
- Unfolding first-principles band structures
- A review of Fe-chalcogenide superconductors: the simplest Fe-based superconductor
- Superconductivity at 17 K in (Fe2P2)(Sr4Sc2O6): a new superconducting layered pnictide oxide with a thick perovskite oxide layer
- Bandwidth and Fermi surface of Iron-Oxypnictides: covalency and sensitivity to structural changes
- A possible ground state and its electronic structure of a mother material (LaOFeAs) of new superconductors
- First Homologous Series of Iron Pnictide Oxide Superconductors (Fe2As2)(Can+1(Sc,Ti)nOy) [n = 3,4,5] with Extremely Thick Blocking Layers
- Superconductivity at 28.3 and 17.1 K in (Ca4Al2O6-y)(Fe2Pn2) (Pn = As and P)
- Second Homologous Series of Iron Pnictide Oxide Superconductors (Fe2As2)(Can+2(Al,Ti)nOy)[n = 2,3,4]
- Superconductivity Above 40 K Observed in a New Iron Arsenide Oxide (Fe2As2)(Ca4(Mg,Ti)3Oy)
- Maximizing Fermi surface multiplicity optimizes superconductivity in iron pnictides
- New Iron Arsenide Oxides (Fe2As2)(Sr4(Sc,Ti)3O8), (Fe2As2)(Ba4Sc3O7.5), and (Fe2As2)(Ba3Sc2O5)
- Electronic Structure of Novel Superconductor Ca4Al2O6Fe2As2
Cited by in corpus (3)
- Emergent Phases of Nodeless and Nodal Superconductivity Separated by Antiferromagnetic Order in Iron-based Superconductor (Ca4Al2O6)Fe2(As1-xPx)2: 75As- and 31P-NMR Studies
- Least momentum space frustration as a condition for "high sweet spot" in the iron-based superconductors
- Understanding the re-entrant superconducting phase diagram of an iron-pnictide CaAlOFe(AsP)