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Dive into the research topics where C. G. Fatuzzo is active.

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Featured researches published by C. G. Fatuzzo.


Physical Review B | 2015

Electron scattering, charge order, and pseudogap physics in La1.6–xNd0.4SrxCuO4: An angle-resolved photoemission spectroscopy study

C. E. Matt; C. G. Fatuzzo; Y. Sassa; Martin Månsson; Sara Fatale; V. Bitetta; Xiaoying Shi; S. Pailhès; M. H. Berntsen; Tohru Kurosawa; M. Oda; Naoki Momono; O. J. Lipscombe; Stephen M Hayden; Jiaqiang Yan; J.-S. Zhou; John B. Goodenough; Sunseng Pyon; T. Takayama; H. Takagi; L. Patthey; Azzedine Bendounan; Elia Razzoli; M. Shi; Nicholas C. Plumb; M. Radovic; M. Grioni; J. Mesot; Oscar Tjernberg; Johan Chang

We report an angle-resolved photoemission study of the charge stripe ordered La1.6-xNd0.4SrxCuO4 (Nd-LSCO) system. A comparative and quantitative line-shape analysis is presented as the system evolves from the overdoped regime into the charge ordered phase. On the overdoped side (x = 0.20), a normal-state antinodal spectral gap opens upon cooling below 80 K. In this process, spectral weight is preserved but redistributed to larger energies. A correlation between this spectral gap and electron scattering is found. A different line shape is observed in the antinodal region of charge ordered Nd-LSCO x = 1/8. Significant low-energy spectral weight appears to be lost. These observations are discussed in terms of spectral-weight redistribution and gapping originating from charge stripe ordering.


Physical Review B | 2015

Spin-orbit-induced orbital excitations in Sr2RuO4 and Ca2RuO4: A resonant inelastic x-ray scattering study

C. G. Fatuzzo; Marcus Dantz; Sara Fatale; P. Olalde-Velasco; N. E. Shaik; B. Dalla Piazza; S. Toth; Jonathan Pelliciari; R. Fittipaldi; A. Vecchione; N. Kikugawa; J. S. Brooks; Henrik M. Rønnow; M. Grioni; Ch. Rüegg; Thorsten Schmitt; J. Chang

High-resolution resonant inelastic x-ray scattering (RIXS) at the oxygen K edge has been used to study the orbital excitations of Ca2RuO4 and Sr2RuO4. In combination with linear dichroism x-ray absorption spectroscopy, the ruthenium 4d-orbital occupation and excitations were probed through their hybridization with the oxygen p orbitals. These results are described within a minimal model, taking into account crystal field splitting and a spin-orbit coupling λso=200 meV. The effects of spin-orbit interaction on the electronic structure and implications for the Mott and superconducting ground states of (Ca,Sr)2RuO4 are discussed.


Nature Communications | 2017

Hallmarks of Hunds coupling in the Mott insulator Ca2RuO4

D. Sutter; C. G. Fatuzzo; Simon Moser; Minjae Kim; R. Fittipaldi; A. Vecchione; V. Granata; Y. Sassa; F. Cossalter; G. Gatti; M. Grioni; Henrik M. Rønnow; Nicholas C. Plumb; C. E. Matt; M. Shi; M. Hoesch; T. K. Kim; Tay-Rong Chang; Horng-Tay Jeng; C. Jozwiak; E. Rotenberg; Antoine Georges; Titus Neupert; J. Chang

A paradigmatic case of multi-band Mott physics including spin-orbit and Hunds coupling is realized in Ca2RuO4. Progress in understanding the nature of this Mott insulating phase has been impeded by the lack of knowledge about the low-energy electronic structure. Here we provide—using angle-resolved photoemission electron spectroscopy—the band structure of the paramagnetic insulating phase of Ca2RuO4 and show how it features several distinct energy scales. Comparison to a simple analysis of atomic multiplets provides a quantitative estimate of the Hunds coupling J=0.4 eV. Furthermore, the experimental spectra are in good agreement with electronic structure calculations performed with Dynamical Mean-Field Theory. The crystal field stabilization of the dxy orbital due to c-axis contraction is shown to be essential to explain the insulating phase. These results underscore the importance of multi-band physics, Coulomb interaction and Hunds coupling that together generate the Mott insulating state of Ca2RuO4.


Physical Review B | 2014

Nodal Landau Fermi-liquid quasiparticles in overdoped La1.77Sr0.23CuO4

C. G. Fatuzzo; Y. Sassa; Martin Månsson; S. Pailhès; O. J. Lipscombe; Stephen M Hayden; L. Patthey; M. Shi; M. Grioni; Henrik M. Rønnow; J. Mesot; Oscar Tjernberg; J. Chang

Nodal angle-resolved photoemission spectra taken on overdoped La1.77Sr0.23CuO4 are presented and analyzed. It is proven that the low-energy excitations are true Landau Fermi-liquid quasiparticles. We show that momentum and energy distribution curves can be analyzed self-consistently without quantitative knowledge of the bare band dispersion. Finally, by imposing Kramers-Kronig consistency on the self-energy Sigma, insight into the quasiparticle residue is gained. We conclude by comparing our results to quasiparticle properties extracted from thermodynamic, magnetoresistance, and high-field quantum oscillation experiments on overdoped Tl2Ba2CuO6+delta.


Nature Communications | 2018

Direct observation of orbital hybridisation in a cuprate superconductor

C. E. Matt; D. Sutter; A. M. Cook; Y. Sassa; Martin Månsson; Oscar Tjernberg; L. Das; M. Horio; D. Destraz; C. G. Fatuzzo; K. Hauser; M. Shi; Masaki Kobayashi; V. N. Strocov; Thorsten Schmitt; P. Dudin; M. Hoesch; Sunseng Pyon; T. Takayama; H. Takagi; O. J. Lipscombe; Stephen M Hayden; T. Kurosawa; N. Momono; M. Oda; Titus Neupert; J. Chang

The minimal ingredients to explain the essential physics of layered copper-oxide (cuprates) materials remains heavily debated. Effective low-energy single-band models of the copper–oxygen orbitals are widely used because there exists no strong experimental evidence supporting multi-band structures. Here, we report angle-resolved photoelectron spectroscopy experiments on La-based cuprates that provide direct observation of a two-band structure. This electronic structure, qualitatively consistent with density functional theory, is parametrised by a two-orbital (


Physical Review B | 2017

Damped spin excitations in a doped cuprate superconductor with orbital hybridization

O. Ivashko; N. E. Shaik; X. Lu; C. G. Fatuzzo; Marcus Dantz; Paul Gregory Freeman; D. E. Mcnally; D. Destraz; N. B. Christensen; T. Kurosawa; N. Momono; M. Oda; C. E. Matt; Claude Monney; Henrik M. Rønnow; Thorsten Schmitt; J. Chang


Physical Review B | 2017

Electronic and magnetic excitations in the half-stuffed Cu-O planes of Ba2Cu3O4Cl2 measured by resonant inelastic x-ray scattering

Sara Fatale; C. G. Fatuzzo; P. Babkevich; N. E. Shaik; Jonathan Pelliciari; X. Lu; D. E. McNally; Thorsten Schmitt; Akiko Kikkawa; Y. Taguchi; Y. Tokura; B. Normand; Henrik M. Rønnow; M. Grioni

d_{x^2 - y^2}


Physical Review X | 2018

Spin-Orbital Excitations in Ca2RuO4 Revealed by Resonant Inelastic X-Ray Scattering

L. Das; F. Forte; R. Fittipaldi; C. G. Fatuzzo; V. Granata; O. Ivashko; M. Horio; Frank Schindler; Marcus Dantz; Yi Tseng; D. E. Mcnally; Henrik M. Rønnow; W. Wan; N. B. Christensen; Jonathan Pelliciari; P. Olalde-Velasco; N. Kikugawa; Titus Neupert; A. Vecchione; Thorsten Schmitt; M. Cuoco; J. Chang


Archive | 2017

High-temperature Superconductivity Restrained by Orbital Hybridisation

Christian E. Matt; D. Sutter; Ashley M. Cook; Y. Sassa; Martin Månsson; Oscar Tjernberg; L. Das; M. Horio; D. Destraz; C. G. Fatuzzo; K. Hauser; M. Shi; Michikazu Kobayashi; V. N. Strocov; P. Dudin; M. Hoesch; Sunseng Pyon; T. Takayama; H. Takagi; O. J. Lipscombe; Stephen M Hayden; T. Kurosawa; Naoki Momono; M. Oda; Titus Neupert; Johan Chang

dx2-y2 and


Physical Review B | 2015

Publisher's Note: Spin-orbit-induced orbital excitations inSr2RuO4andCa2RuO4: A resonant inelastic x-ray scattering study [Phys. Rev. B91, 155104 (2015)]

C. G. Fatuzzo; Marcus Dantz; Sara Fatale; P. Olalde-Velasco; N. E. Shaik; B. Dalla Piazza; S. Toth; Jonathan Pelliciari; R. Fittipaldi; A. Vecchione; N. Kikugawa; J. S. Brooks; H. M. Rønnow; M. Grioni; Ch. Rüegg; Thorsten Schmitt; J. Chang

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J. Chang

École Polytechnique Fédérale de Lausanne

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Henrik M. Rønnow

École Polytechnique Fédérale de Lausanne

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M. Shi

Paul Scherrer Institute

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Sara Fatale

École Polytechnique Fédérale de Lausanne

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C. E. Matt

Paul Scherrer Institute

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N. E. Shaik

École Polytechnique Fédérale de Lausanne

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Jonathan Pelliciari

Massachusetts Institute of Technology

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