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Beecroft building, Department of Physics, University of Oxford
Credit: Jack Hobhouse

Prof. J. C. Seamus Davis

Professor of Physics

Research theme

  • Fields, strings, and quantum dynamics
  • Quantum materials

Sub department

  • Condensed Matter Physics

Research groups

  • Macroscopic Quantum Matter
seamus.davis@physics.ox.ac.uk
Telephone: +353830392937
Clarendon Laboratory, room 512.40.28
  • About
  • Publications

Phase diagram of Bi2Sr2CaCu2O8+δ revisited

Nature Communications Springer Nature 9:1 (2018) 5210

Authors:

IK Drozdov, I Pletikosić, C-K Kim, K Fujita, GD Gu, JC Séamus Davis, PD Johnson, I Božović, T Valla

Imaging orbital-selective quasiparticles in the Hund’s metal state of FeSe

Nature Materials Springer Nature 17:10 (2018) 869-874

Authors:

A Kostin, PO Sprau, A Kreisel, Yi Xue Chong, AE Böhmer, PC Canfield, PJ Hirschfeld, BM Andersen, JC Séamus Davis

Pair density waves in superconducting vortex halos

PHYSICAL REVIEW B 97:17 (2018) ARTN 174510

Authors:

Yuxuan Wang, Stephen D Edkins, Mohammad H Hamidian, JC Seamus Davis, Eduardo Fradkin, Steven A Kivelson

In-situ angle-resolved photoemission spectroscopy of copper-oxide thin films synthesized by molecular beam epitaxy

Journal of Electron Spectroscopy and Related Phenomena (2018)

Authors:

CK Kim, IK Drozdov, K Fujita, JCS Davis, I Božović, T Valla

Abstract:

© 2018 Elsevier B.V. Angle-resolved photoemission spectroscopy (ARPES) is the key momentum-resolved technique for direct probing of the electronic structure of a material. However, since it is highly surface-sensitive, it has been applied to a relatively small set of complex oxides that can be easily cleaved in ultra-high vacuum. Here we describe a new multi-module system at Brookhaven National Laboratory (BNL) in which an oxide molecular beam epitaxy (OMBE) is interconnected with an ARPES and a spectroscopic-imaging scanning tunneling microscopy (SI-STM) module. This new capability largely expands the range of complex-oxide materials and artificial heterostructures accessible to these two most powerful and complementary techniques for studies of electronic structure of materials. We also present the first experimental results obtained using this system — the ARPES studies of electronic band structure of a La2-xSrxCuO4 (LSCO) thin film grown by OMBE.

Orbital superconductivity, defects, and pinned nematic fluctuations in the doped iron chalcogenide FeSe0.45Te0.55

Physical Review B 96:6 (2017)

Authors:

S Sarkar, J Van Dyke, PO Sprau, F Massee, U Welp, WK Kwok, JCS Davis, DK Morr

Abstract:

© 2017 American Physical Society. We demonstrate that the differential conductance, dI/dV, measured via spectroscopic imaging scanning tunneling microscopy in the doped iron chalcogenide FeSe0.45Te0.55, possesses a series of characteristic features that allow one to extract the orbital structure of the superconducting gaps. This yields nearly isotropic superconducting gaps on the two holelike Fermi surfaces, and a strongly anisotropic gap on the electronlike Fermi surface. Moreover, we show that the pinning of nematic fluctuations by defects can give rise to a dumbbell-like spatial structure of the induced impurity bound states, and explains the related C2 symmetry in the Fourier transformed differential conductance.

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