Time Reversal Symmetry Breaking in the FeTe<sub>1-x</sub>Se<sub>x</sub> family of high Tc superconductors.
· Invited
Abstract
Laser-based ARPES with variable light polarization offers a powerful probe of the electronic structure near the center of the Brillouin zone. Here the technique is used to examine the Fe-based superconductor family, FeTe1-xSex. At the zone center we observe the presence of Dirac cones with helical spin structure as expected for topological surface states and as previously reported in the related FeTe0.55Se0.45.[1] These studies are compared with theoretical studies that take account of the disordered local magnetic moments related to the paramagnetism observed in this system. Indeed including the magnetic contributions in the theoretical description is necessary to bring the chemical potential of the calculated electronic band structure into alignment with experimental observation. In the bulk superconducting state for FeTe0.7Se0.3 the topological state appears to acquire mass below Tc. With a single state at the center of the zone, mass acquisition is indicative of time reversal symmetry breaking which in turn suggests the potential formation of ferromagnetism in the surface layer.
[1] P. Zhang et al., Science 360, 182 (2018)
[1] P. Zhang et al., Science 360, 182 (2018)
*The work carried out at Brookhaven was supported in part by the U.S. DOE under Contract No. DE-AC02-98CH10886 and in part by the Center for Computational Design of Functional Strongly Correlated Materials and Theoretical Spectroscopy. C. W. at UCSD was supported by AFOSR FA9550-14-1-0168.
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Presenters
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Peter Johnson
- Brookhaven National Laboratory