We discuss and test a combined method to efficiently perform ground-state and excited-state calculations for relaxed structures using both a quantum first-principles approach and a classical molecular-dynamics scheme. We apply this method to calculate the ground state, the optical properties, and the electronic excitations of Ge nanoparticles embedded in a cubic SiC matrix. Classical molecular dynamics is used to relax the large-supercell system. First-principles quantum techniques are then used to calculate the electronic structure and, in turn, the electronic excitation and optical properties. The proposed procedure is tested with data resulting from a full first-principles scheme. The agreement is quantitatively discussed between the res...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
We discuss and test a combined method to efficiently perform ground-state and excited-state calculat...
We discuss and test a combined method to efficiently perform ground- and excited-state calculations ...
We discuss and test a combined method to efficiently perform ground-state and excited-state calculat...
We discuss and test a combined method to efficiently perform ground-state and excited-state calculat...
We discuss and test a combined method to efficiently perform ground-state and excited-state calculat...
We discuss and test a combined method to efficiently perform ground-state and excited-state calculat...
We discuss and test a combined method to efficiently perform ground- and excited-state calculations ...
We discuss and test a combined method to efficiently perform ground-state and excited-state calcula...
We propose a combined method to eciently perform ground- and excited-state calculations for relaxed...
We propose a combined method to eciently perform ground- and excited-state calculations for relaxed...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
We discuss and test a combined method to efficiently perform ground-state and excited-state calculat...
We discuss and test a combined method to efficiently perform ground- and excited-state calculations ...
We discuss and test a combined method to efficiently perform ground-state and excited-state calculat...
We discuss and test a combined method to efficiently perform ground-state and excited-state calculat...
We discuss and test a combined method to efficiently perform ground-state and excited-state calculat...
We discuss and test a combined method to efficiently perform ground-state and excited-state calculat...
We discuss and test a combined method to efficiently perform ground- and excited-state calculations ...
We discuss and test a combined method to efficiently perform ground-state and excited-state calcula...
We propose a combined method to eciently perform ground- and excited-state calculations for relaxed...
We propose a combined method to eciently perform ground- and excited-state calculations for relaxed...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...
An overview is given on the electronic and optical properties of Si and Ge nanocrystals. We model fr...