Atomically thin two-dimensional heterostructures are a promising, novel class of materials with ground-breaking properties. The possibility of choosing many constituent components and their proportions allows optimization of these materials to specific requirements. The wide adaptability comes with a cost of large parameter space making it hard to experimentally test all the possibilities. Instead, efficient computational modeling is needed. However, large range of relevant time and length scales related to physics of polycrystalline materials poses a challenge for computational studies. To this end, we present an efficient and flexible phase-field crystal model to describe the atomic configurations of multiple atomic species and phases coe...
We apply a simple dynamical density functional theory, the phase-field crystal (PFC) model of overda...
Research on two-dimensional (2D) materials currently occupies a sizeable fraction of the materials s...
Graphene is a one-atom-thick allotrope, or form, of carbon. Within graphene, each carbon atom bonds ...
Atomically thin two-dimensional heterostructures are a promising, novel class of materials with grou...
Atomically thin two-dimensional heterostructures are a promising, novel class of materials with grou...
Two-dimensional materials such as graphene and hexagonal boron nitride(h-BN) are an important class ...
Two-dimensional materials such as graphene and hexagonal boron nitride(h-BN) are an important class ...
We extend the phase field crystal (PFC) framework to quantitative modeling of polycrystalline graphe...
We extend the phase field crystal (PFC) framework to quantitative modeling of polycrystalline graphe...
The growth and microstructural properties of ternary monolayers of two-dimensional hexagonal materia...
In this paper, a two-dimensional phase field crystal model of graphene and hexagonal boron nitride (...
This chapter describes phase-field crystal (PFC) modeling for bridging length scales between electro...
This chapter describes phase-field crystal (PFC) modeling for bridging length scales between electro...
This chapter describes phase-field crystal (PFC) modeling for bridging length scales between electro...
Phase-field crystal (PFC) is a model with atomistic-scale details acting on diffusive time scales. P...
We apply a simple dynamical density functional theory, the phase-field crystal (PFC) model of overda...
Research on two-dimensional (2D) materials currently occupies a sizeable fraction of the materials s...
Graphene is a one-atom-thick allotrope, or form, of carbon. Within graphene, each carbon atom bonds ...
Atomically thin two-dimensional heterostructures are a promising, novel class of materials with grou...
Atomically thin two-dimensional heterostructures are a promising, novel class of materials with grou...
Two-dimensional materials such as graphene and hexagonal boron nitride(h-BN) are an important class ...
Two-dimensional materials such as graphene and hexagonal boron nitride(h-BN) are an important class ...
We extend the phase field crystal (PFC) framework to quantitative modeling of polycrystalline graphe...
We extend the phase field crystal (PFC) framework to quantitative modeling of polycrystalline graphe...
The growth and microstructural properties of ternary monolayers of two-dimensional hexagonal materia...
In this paper, a two-dimensional phase field crystal model of graphene and hexagonal boron nitride (...
This chapter describes phase-field crystal (PFC) modeling for bridging length scales between electro...
This chapter describes phase-field crystal (PFC) modeling for bridging length scales between electro...
This chapter describes phase-field crystal (PFC) modeling for bridging length scales between electro...
Phase-field crystal (PFC) is a model with atomistic-scale details acting on diffusive time scales. P...
We apply a simple dynamical density functional theory, the phase-field crystal (PFC) model of overda...
Research on two-dimensional (2D) materials currently occupies a sizeable fraction of the materials s...
Graphene is a one-atom-thick allotrope, or form, of carbon. Within graphene, each carbon atom bonds ...