We show how lattice quantum Monte Carlo can be applied to the electronic properties of carbon nanotubes in the presence of strong electron-electron correlations. We employ the path-integral formalism and use methods developed within the lattice QCD community for our numerical work. Our lattice Hamiltonian is closely related to the hexagonal Hubbard model augmented by a long-range electron-electron interaction. We apply our method to the single-quasiparticle spectrum of the (3,3) armchair nanotube configuration, and consider the effects of strong electron-electron correlations. Our approach is equally applicable to other nanotubes, as well as to other carbon nanostructures. We benchmark our Monte Carlo calculations against the two- and four-...
We performed quantum Monte Carlo (QMC) calculations for a model system of excitons and biexcitons in...
This thesis deals with quantum Monte Carlo simulations of correlated low dimensional electron system...
Describing correlated electron systems has been a major challenge in computational condensed-matter ...
We show how lattice Quantum Monte Carlo simulations can be used to calculate electronic properties o...
Quantum Monte Carlo has been established as a powerful computational tool to study quantum many-body...
We present exact diagonalization studies of two-dimensional electron gas on hexagonal lattice. Using...
We studied the stationary electron transport of semiconduction single-wall straight and helically co...
carbon nanotubes. The energy band structure of a carbon nanotube may ordinarily be obtained by “zone...
In the present work we study the electronic transport properties of finite length single-wall carbon...
Abstract. We describe quantum Monte Carlo methods for simulating quantum systems. These techniques a...
Quantum Monte Carlo (QMC) is one of the most promising methods for solving quantum many-body proble...
Carbon nanotubes have excellent potential as basic building blocks for nanometer scale electron devi...
Single localized polaron (quasiparticle) States are considered in structures relating to carbon nano...
The study of interacting quantum many-body systems poses one of the main challenges in areas includi...
Carbon nanotubes are invariably terminated with hemi-fullerene caps. In order to investigate the eff...
We performed quantum Monte Carlo (QMC) calculations for a model system of excitons and biexcitons in...
This thesis deals with quantum Monte Carlo simulations of correlated low dimensional electron system...
Describing correlated electron systems has been a major challenge in computational condensed-matter ...
We show how lattice Quantum Monte Carlo simulations can be used to calculate electronic properties o...
Quantum Monte Carlo has been established as a powerful computational tool to study quantum many-body...
We present exact diagonalization studies of two-dimensional electron gas on hexagonal lattice. Using...
We studied the stationary electron transport of semiconduction single-wall straight and helically co...
carbon nanotubes. The energy band structure of a carbon nanotube may ordinarily be obtained by “zone...
In the present work we study the electronic transport properties of finite length single-wall carbon...
Abstract. We describe quantum Monte Carlo methods for simulating quantum systems. These techniques a...
Quantum Monte Carlo (QMC) is one of the most promising methods for solving quantum many-body proble...
Carbon nanotubes have excellent potential as basic building blocks for nanometer scale electron devi...
Single localized polaron (quasiparticle) States are considered in structures relating to carbon nano...
The study of interacting quantum many-body systems poses one of the main challenges in areas includi...
Carbon nanotubes are invariably terminated with hemi-fullerene caps. In order to investigate the eff...
We performed quantum Monte Carlo (QMC) calculations for a model system of excitons and biexcitons in...
This thesis deals with quantum Monte Carlo simulations of correlated low dimensional electron system...
Describing correlated electron systems has been a major challenge in computational condensed-matter ...