A multiscale approach was adopted for the calculation of confined states in self-assembled semiconductor quantum dots (QDs). While results close to experimental data have been obtained with a combination of atomistic strain and tight-binding (TB) electronic structure description for the confined quantum states in the QD, the TB calculation requires substantial computational resources. To alleviate this problem an integrated approach was adopted to compute the energy states from a continuum 8-band k.p Hamiltonian under the influence of an atomistic strain field. Such multiscale simulations yield a roughly six-fold faster simulation. Atomic-resolution strain is added to the k.p Hamiltonian through interpolation onto a coarser continuum grid. ...
We present atomistic tight-binding theory of electronic structure and optical properties of InAs/GaA...
Coherent coupling and formation of molecular orbitals in vertically coupled quantum-dot molecules is...
In this thesis the electronic and optical properties of semiconductor quantum dots are investigated ...
Quantum dot nanostructures incorporate unique mechanical and electronic properties that dictate thei...
Quantum dots grown by self-assembly process are typically constructed by 50,000 to 5,000,000 structu...
Strain in self-assembled quantum dots is a long-range phenomenon, and its realistic determination re...
A confined structure in all three dimensions leads to carrier’s discrete energy level spectrum in qu...
An array of semiconductor quantum dots is studied computationally using an approach that couples lin...
Semiconductor quantum dots are of particular interest, both for fundamental research and possible ap...
The theoretical calculation of the electronic structure of any constituent materials is the first st...
Semiconductor quantum dots are of particular interest, both for fundamental research and possible ap...
The utilization of self-assembling phenomena is important in nano material processes. For the fabric...
Atomistic calculations of properties of self-assembled quantum dots (SAD) involve computational doma...
We present an atomistic simulation of an InxGa1-xAs/GaAs quantum dot with a non-uniform composition,...
Abstract: The ground state confinement energy and its associated wavelength as a function of radius ...
We present atomistic tight-binding theory of electronic structure and optical properties of InAs/GaA...
Coherent coupling and formation of molecular orbitals in vertically coupled quantum-dot molecules is...
In this thesis the electronic and optical properties of semiconductor quantum dots are investigated ...
Quantum dot nanostructures incorporate unique mechanical and electronic properties that dictate thei...
Quantum dots grown by self-assembly process are typically constructed by 50,000 to 5,000,000 structu...
Strain in self-assembled quantum dots is a long-range phenomenon, and its realistic determination re...
A confined structure in all three dimensions leads to carrier’s discrete energy level spectrum in qu...
An array of semiconductor quantum dots is studied computationally using an approach that couples lin...
Semiconductor quantum dots are of particular interest, both for fundamental research and possible ap...
The theoretical calculation of the electronic structure of any constituent materials is the first st...
Semiconductor quantum dots are of particular interest, both for fundamental research and possible ap...
The utilization of self-assembling phenomena is important in nano material processes. For the fabric...
Atomistic calculations of properties of self-assembled quantum dots (SAD) involve computational doma...
We present an atomistic simulation of an InxGa1-xAs/GaAs quantum dot with a non-uniform composition,...
Abstract: The ground state confinement energy and its associated wavelength as a function of radius ...
We present atomistic tight-binding theory of electronic structure and optical properties of InAs/GaA...
Coherent coupling and formation of molecular orbitals in vertically coupled quantum-dot molecules is...
In this thesis the electronic and optical properties of semiconductor quantum dots are investigated ...