Using a combination of spectroscopic ellipsometry and DC transport measurements, we determine the temperature dependence of the optical conductivity of NdNiO3 and SmNiO3 films. The optical spectra show the appearance of a characteristic two-peak structure in the near-infrared when the material passes from the metal to the insulator phase. Dynamical mean-field theory calculations confirm this two-peak structure and allow us to identify these spectral changes and the associated changes in the electronic structure. We demonstrate that the insulating phase in these compounds and the associated characteristic two-peak structure are due to the combined effect of bond disproportionation and Mott physics associated with half of the disproportionate...
RNiO3 (R: rare earth) is one of the typical bandwidth-control metal-insulator transition systems. It...
Heteroepitaxy offers a new type of control mechanism for the crystal structure, the electronic corre...
Material properties can be controlled via strain, pressure, chemical composition, or dimensionality....
We study the temperature dependence of the optical conductivity of rare-earth nickelate films of var...
We report the evolution of the lattice, electronic and magnetic structure of nickelates along the se...
We report the evolution of the lattice, electronic and magnetic structure of nickelates along the se...
We present a scanning tunnelling microscopy study of the metal insulator (MI) phase transition in Nd...
We present a scanning tunnelling microscopy study of the metal insulator (MI) phase transition in Nd...
Electronic structures of metallic LaNiO3 and insulating NdNiO3 are investigated using electron spect...
Resistances that exceed the Mott-Ioffe-Regel limit (known as bad metal behavior) and non-Fermi liqui...
Resistances that exceed the Mott-Ioffe-Regel limit (known as bad metal behavior) and non-Fermi liqui...
This thesis reports a systematic analysis on epitaxial nickelate thin films. As oxides with strong e...
Rare-earth nickelates are strongly correlated oxides displaying a metal-to-insulator transition at a...
The metal-insulator transition and the intriguing physical properties of rare-earth perovskite nicke...
Electronic structures of metallic $LaNiO_3$ and insulating $NdNiO_3$ are investigated using electron...
RNiO3 (R: rare earth) is one of the typical bandwidth-control metal-insulator transition systems. It...
Heteroepitaxy offers a new type of control mechanism for the crystal structure, the electronic corre...
Material properties can be controlled via strain, pressure, chemical composition, or dimensionality....
We study the temperature dependence of the optical conductivity of rare-earth nickelate films of var...
We report the evolution of the lattice, electronic and magnetic structure of nickelates along the se...
We report the evolution of the lattice, electronic and magnetic structure of nickelates along the se...
We present a scanning tunnelling microscopy study of the metal insulator (MI) phase transition in Nd...
We present a scanning tunnelling microscopy study of the metal insulator (MI) phase transition in Nd...
Electronic structures of metallic LaNiO3 and insulating NdNiO3 are investigated using electron spect...
Resistances that exceed the Mott-Ioffe-Regel limit (known as bad metal behavior) and non-Fermi liqui...
Resistances that exceed the Mott-Ioffe-Regel limit (known as bad metal behavior) and non-Fermi liqui...
This thesis reports a systematic analysis on epitaxial nickelate thin films. As oxides with strong e...
Rare-earth nickelates are strongly correlated oxides displaying a metal-to-insulator transition at a...
The metal-insulator transition and the intriguing physical properties of rare-earth perovskite nicke...
Electronic structures of metallic $LaNiO_3$ and insulating $NdNiO_3$ are investigated using electron...
RNiO3 (R: rare earth) is one of the typical bandwidth-control metal-insulator transition systems. It...
Heteroepitaxy offers a new type of control mechanism for the crystal structure, the electronic corre...
Material properties can be controlled via strain, pressure, chemical composition, or dimensionality....