Chalcopyrite (CuFeS<sub>2</sub>) is an antiferromagnetic semiconductor with unusual magnetic and electrical properties, which are still not clearly understood. Neutron diffraction experiments reveal a phase transition at ∼50 K that has been attributed to an unexpected appearance of magnetic moments on Cu ions, having a paramagnetic arrangement down to 50 K and then ordering to an antiferromagnetic state at lower temperatures. In this study we use DFT-based computational methods to investigate the electronic structure and magnetic properties of CuFeS<sub>2</sub> in order to obtain a reliable source of information for the interpretation of the observed magnetic behavior, and in particular to shed some light on the magnetic behavior of copper ...
The Fe-doped CuInS2 could have important applications for photovoltaic or spintronic applications. T...
We report density-functional studies of the Fe1-xCuxSe alloy done using supercell and coherent-poten...
The magnetic structures of the triangular lattice antiferromagnet CuFeO2 below 14 K are described b...
The ground state band structure, magnetic moments, charges and population numbers of electronic shel...
The ground state band structure, magnetic moments, charges and population numbers of electronic shel...
Chalcogenide minerals exhibit a fascinating variety of crystal-chemistry and physical properties tha...
Chalcopyrite CuFeS2 is a known semiconductor mineral with a wide range of unique physical and chemic...
Chalcopyrite CuFeS2 is a known semiconductor mineral with a wide range of unique physical and chemic...
Chalcopyrite $(CuFeS_2)$ and pyrite $(FeS_2)$ are commonly associated with each other, and they both...
We have investigated the magnetic ground state of CuFeAs and CuFeSb by means of Fe-57-Mossbauer spec...
We present first-principles density functional theory (DFT) calculations within the generalized grad...
We present results from density functional theory calculations referring to the magnetic properties ...
Our study targets some of the long-standing questions concerning the somewhat mysterious properties ...
The electronic and magnetic structure, including the Heisenberg model exchange interaction parameter...
Mossbauer effect (MES), X-ray photoelectron (XPS) spectroscopies were used to study antiferromagneti...
The Fe-doped CuInS2 could have important applications for photovoltaic or spintronic applications. T...
We report density-functional studies of the Fe1-xCuxSe alloy done using supercell and coherent-poten...
The magnetic structures of the triangular lattice antiferromagnet CuFeO2 below 14 K are described b...
The ground state band structure, magnetic moments, charges and population numbers of electronic shel...
The ground state band structure, magnetic moments, charges and population numbers of electronic shel...
Chalcogenide minerals exhibit a fascinating variety of crystal-chemistry and physical properties tha...
Chalcopyrite CuFeS2 is a known semiconductor mineral with a wide range of unique physical and chemic...
Chalcopyrite CuFeS2 is a known semiconductor mineral with a wide range of unique physical and chemic...
Chalcopyrite $(CuFeS_2)$ and pyrite $(FeS_2)$ are commonly associated with each other, and they both...
We have investigated the magnetic ground state of CuFeAs and CuFeSb by means of Fe-57-Mossbauer spec...
We present first-principles density functional theory (DFT) calculations within the generalized grad...
We present results from density functional theory calculations referring to the magnetic properties ...
Our study targets some of the long-standing questions concerning the somewhat mysterious properties ...
The electronic and magnetic structure, including the Heisenberg model exchange interaction parameter...
Mossbauer effect (MES), X-ray photoelectron (XPS) spectroscopies were used to study antiferromagneti...
The Fe-doped CuInS2 could have important applications for photovoltaic or spintronic applications. T...
We report density-functional studies of the Fe1-xCuxSe alloy done using supercell and coherent-poten...
The magnetic structures of the triangular lattice antiferromagnet CuFeO2 below 14 K are described b...