Suppression of electronic correlations by chemical pressure from FeSe to FeS

(2017)

Authors:

P Reiss, MD Watson, TK Kim, AA Haghighirad, DN Woodruff, M Bruma, SJ Clarke, AI Coldea

Formation of Hubbard-like bands as a fingerprint of strong electron-electron interactions in FeSe

PHYSICAL REVIEW B 95:8 (2017) ARTN 081106

Authors:

MD Watson, S Backes, AA Haghighirad, M Hoesch, TK Kim, AI Coldea, R Valenti

First-principles study of the dynamic Jahn-Teller distortion of the neutral vacancy in diamond

Physical Review B American Physical Society (APS) 95:1 (2017) 014108

Authors:

Joseph CA Prentice, Bartomeu Monserrat, RJ Needs

Abstract:

First-principles density functional theory methods are used to investigate the structure, energetics, and vibrational motions of the neutral vacancy defect in diamond. The measured optical absorption spectrum demonstrates that the tetrahedral Td point group symmetry of pristine diamond is maintained when a vacancy defect is present. This is shown to arise from the presence of a dynamic Jahn-Teller distortion that is stabilized by large vibrational anharmonicity. Our calculations further demonstrate that the dynamic Jahn-Teller-distorted structure of Td symmetry is lower in energy than the static Jahn-Teller distorted tetragonal D2d vacancy defect, in agreement with experimental observations. The tetrahedral vacancy structure becomes more stable with respect to the tetragonal structure by increasing temperature. The large anharmonicity arises mainly from quartic vibrations, and is associated with a saddle point of the Born-Oppenheimer surface and a minimum in the free energy. This study demonstrates that the behavior of Jahn-Teller distortions of point defects can be calculated accurately using anharmonic vibrational methods. Our work will open the way for first-principles treatments of dynamic Jahn-Teller systems in condensed matter.

First-principles study of the dynamic Jahn-Teller distortion of the neutral vacancy in diamond

ArXiv 1701.01118 (2017)

Authors:

Joseph CA Prentice, Bartomeu Monserrat, RJ Needs

Suppression of electronic correlations by chemical pressure from FeSe to FeS (ARPES_FeSeS 2017)

University of Oxford (2017)

Authors:

Amalia Coldea, Pascal Reiss

Abstract:

ARPES data were created at the Diamod Light Source and transport data were collected in Oxford. These data are part of the publication with the same title to appear in Phys Rev B, Rapid Communication 2017.