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91探花
Quantum oscillations

Amalia Coldea

Professor of Physics

Research theme

  • Quantum materials

Sub department

  • Condensed Matter Physics

Research groups

  • Quantum matter in high magnetic fields
amalia.coldea@physics.ox.ac.uk
Telephone: 01865 (2)82196
Clarendon Laboratory, room 251,265,264,166
  • About
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  • Publications

Anisotropic magnetic interactions in a candidate Kitaev spin liquid close to a metal-insulator transition

(2024)

Authors:

Zeyu Ma, Danrui Ni, David AS Kaib, Kylie MacFarquharson, John S Pearce, Robert J Cava, Roser Valenti, Radu Coldea, Amalia I Coldea

Anisotropy of the zigzag order in the Kitaev honeycomb magnet $\alpha$-RuBr$_3$

(2024)

Authors:

John S Pearce, David AS Kaib, Zeyu Ma, Danrui Ni, RJ Cava, Roser Valenti, Radu Coldea, Amalia I Coldea

Unveiling the quasiparticle behaviour in the pressure-induced high-$T_c$ phase of an iron-chalcogenide superconductor

(2024)

Authors:

Z Zajicek, P Reiss, D Graf, JCA Prentice, Y Sadki, AA Haghighirad, AI Coldea

Unveiling the quasiparticle behaviour in the pressure-induced high-Tc phase of an iron-chalcogenide superconductor

npj Quantum Materials Springer Nature 9:1 (2024) 52

Authors:

Zachary Zajicek, Pascal Reiss, David Graf, Joseph Prentice, Ylias Sadki, Amir Haghighirad, Amalia Coldea

Abstract:

Superconductivity of iron chalocogenides is strongly enhanced under applied pressure yet its underlying pairing mechanism remains elusive. Here, we present a quantum oscillations study up to 45鈥塗 in the high-Tc phase of tetragonal FeSe0.82S0.18 up to 22鈥塳bar. Under applied pressure, the quasi-two-dimensional multi-band Fermi surface expands and the effective masses remain large, whereas the superconductivity displays a threefold enhancement. Comparing with chemical pressure tuning of FeSe1鈭抶Sx, the Fermi surface expands in a similar manner but the effective masses and Tc are suppressed. These differences may be attributed to the changes in the density of states influenced by the chalcogen height, which could promote stronger spin fluctuations pairing under pressure. Furthermore, our study also reveals unusual scattering and broadening of superconducting transitions in the high-pressure phase, indicating the presence of a complex pairing mechanism.

Unveiling the quasiparticle behaviour in the pressure-induced high- T c phase of an iron-chalcogenide superconductor

npj Quantum Materials Nature Research 9:1 (2024) 52

Authors:

Z Zajicek, P Reiss, D Graf, JCA Prentice, Y Sadki, AA Haghighirad, AI Coldea

Abstract:

Superconductivity of iron chalocogenides is strongly enhanced under applied pressure yet its underlying pairing mechanism remains elusive. Here, we present a quantum oscillations study up to 45 T in the high-Tc phase of tetragonal FeSe0.82S0.18 up to 22 kbar. Under applied pressure, the quasi-two-dimensional multi-band Fermi surface expands and the effective masses remain large, whereas the superconductivity displays a threefold enhancement. Comparing with chemical pressure tuning of FeSe1鈭抶Sx, the Fermi surface expands in a similar manner but the effective masses and Tc are suppressed. These differences may be attributed to the changes in the density of states influenced by the chalcogen height, which could promote stronger spin fluctuations pairing under pressure. Furthermore, our study also reveals unusual scattering and broadening of superconducting transitions in the high-pressure phase, indicating the presence of a complex pairing mechanism.

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