Unconventional localization of electrons inside of a nematic electronic phase

Proceedings of the National Academy of Sciences Proceedings of the National Academy of Sciences 119:43 (2022)

Authors:

Liam S Farrar, Zachary Zajicek, Archie B Morfoot, Matthew Bristow, Oliver S Humphries, Amir A Haghighirad, Alix McCollam, Simon J Bending, Amalia I Coldea

Abstract:

The magnetotransport behavior inside the nematic phase of bulk FeSe reveals unusual multiband effects that cannot be reconciled with a simple two-band approximation proposed by surface-sensitive spectroscopic probes. In order to understand the role played by the multiband electronic structure and the degree of two-dimensionality, we have investigated the electronic properties of exfoliated flakes of FeSe by reducing their thickness. Based on magnetotransport and Hall resistivity measurements, we assess the mobility spectrum that suggests an unusual asymmetry between the mobilities of the electrons and holes, with the electron carriers becoming localized inside the nematic phase. Quantum oscillations in magnetic fields up to 38 T indicate the presence of a hole-like quasiparticle with a lighter effective mass and a quantum scattering time three times shorter, as compared with bulk FeSe. The observed localization of negative charge carriers by reducing dimensionality can be driven by orbitally dependent correlation effects, enhanced interband spin fluctuations, or a Lifshitz-like transition, which affect mainly the electron bands. The electronic localization leads to a fragile two-dimensional superconductivity in thin flakes of FeSe, in contrast to the two-dimensional high Tc induced with electron doping via dosing or using a suitable interface.

Drastic effect of impurity scattering on the electronic and superconducting properties of Cu-doped FeSe

Physical Review B American Physical Society (APS) 105:11 (2022) 115130

Authors:

Z Zajicek, Sj Singh, H Jones, P Reiss, M Bristow, A Martin, A Gower, A McCollam, Ai Coldea

Efficiently computing excitations of complex systems: linear-scaling time-dependent embedded mean-field theory in implicit solvent

ArXiv 2203.0471 (2022)

The drastic effect of the impurity scattering on the electronic and superconducting properties of Cu-doped FeSe

(2022)

Authors:

Z Zajicek, SJ Singh, H Jones, P Reiss, M Bristow, A Martin, A Gower, A McCollam, AI Coldea

Efficiently computing excitations of complex systems: linear-scaling time-dependent embedded mean-field theory in implicit solvent

Journal of Chemical Theory and Computation ACS Publications 18:3 (2022) 1542-1554

Abstract:

Quantum embedding schemes have the potential to significantly reduce the computational cost of first principles calculations, whilst maintaining accuracy, particularly for calculations of electronic excitations in complex systems. In this work, I combine time-dependent embedded mean field theory (TD-EMFT) with linear-scaling density functional theory and implicit solvation models, extending previous work within the ONETEP code. This provides a way to perform multi-level calculations of electronic excitations on very large Systems, where long-range environmental effects, both quantum and classical in nature, are important. I demonstrate the power of this method by performing simulations on a variety of systems, including a molecular dimer, a chromophore in solution, and a doped molecular crystal. This work paves the way for high accuracy calculations to be performed on large-scale systems that were previously beyond the reach of quantum embedding schemes.