Infinite-layer nickelate thin films materialize an intriguing new platform for high-temperature unconventional superconductivity, with LaNiO2/SrTiO(3)as reference setup. We discuss the relative stability of the elementary interfaces of this system and determine the corresponding electronic band structure. We find substantial changes compared to the bulk, in particular in relation to the 5dorbital contributions to the low-energy physics which can be totally replaced by purely Ni-3dflat bands. Thed(9)configuration characteristic of cuprates can thus be supplemented by an extra interfacial ingredient destabilizing the normal non-superconducting state in these heterostructures
The electronic structure of transition metal oxides featuring correlated electrons can be rationaliz...
We investigated the electronic structures of strongly correlated metallic LaNiO3 (LNO) and semicondu...
Transition metal oxides have been the focus of solid state physics research for decades. The Coulomb...
Infinite-layer nickelate thin films materialize an intriguing new platform for high-temperature unco...
The recent observation of superconductivity in infinite-layer Nd1-xSrxNiO2 thin films has attracted ...
The recent observation of superconductivity in infinite layer Nd1 amp; 8722;xSrxNiO2 thin films has ...
The search continues for nickel oxide-based materials with electronic properties similar to cuprate ...
The discovery of superconductivity in infinite-layer nickelates has attracted much attention due to ...
Superconductivity in infinite-layer nickelates holds exciting analogies with that of cuprates, with ...
This review stands in the larger framework of functional materials by focussing on heterostructures ...
Effective models are constructed for a newly discovered superconductor (Nd,Sr)NiO2, which has been c...
International audienceThe recent discovery of a zero-resistance state in nickel-based compounds has ...
This review stands in the larger framework of functional materials by focussing on heterostructures ...
Recently, superconductivity was discovered in the infinite layer of hole-doped nickelates NdNiO$_{2}...
Motivated by the recent observation of superconductivity in strontium-doped NdNiO2, we study the sup...
The electronic structure of transition metal oxides featuring correlated electrons can be rationaliz...
We investigated the electronic structures of strongly correlated metallic LaNiO3 (LNO) and semicondu...
Transition metal oxides have been the focus of solid state physics research for decades. The Coulomb...
Infinite-layer nickelate thin films materialize an intriguing new platform for high-temperature unco...
The recent observation of superconductivity in infinite-layer Nd1-xSrxNiO2 thin films has attracted ...
The recent observation of superconductivity in infinite layer Nd1 amp; 8722;xSrxNiO2 thin films has ...
The search continues for nickel oxide-based materials with electronic properties similar to cuprate ...
The discovery of superconductivity in infinite-layer nickelates has attracted much attention due to ...
Superconductivity in infinite-layer nickelates holds exciting analogies with that of cuprates, with ...
This review stands in the larger framework of functional materials by focussing on heterostructures ...
Effective models are constructed for a newly discovered superconductor (Nd,Sr)NiO2, which has been c...
International audienceThe recent discovery of a zero-resistance state in nickel-based compounds has ...
This review stands in the larger framework of functional materials by focussing on heterostructures ...
Recently, superconductivity was discovered in the infinite layer of hole-doped nickelates NdNiO$_{2}...
Motivated by the recent observation of superconductivity in strontium-doped NdNiO2, we study the sup...
The electronic structure of transition metal oxides featuring correlated electrons can be rationaliz...
We investigated the electronic structures of strongly correlated metallic LaNiO3 (LNO) and semicondu...
Transition metal oxides have been the focus of solid state physics research for decades. The Coulomb...