ComDMFT is a massively parallel computational package to study the electronic structure of correlated-electron systems (CES). Our approach is a parameter-free method based on ab initio linearized quasiparticle self-consistent GW (LQSGW) and dynamical mean field theory (DMFT). The non-local part of the electronic self-energy is treated within ab initio LQSGW and the local strong correlation is treated within DMFT. In addition to ab initio LQSGW+DMFT, charge self-consistent LDA+DMFT methodology is also implemented, enabling multiple methods in one open-source platform for the electronic structure of CES. This package can be extended for future developments to implement other methodologies to treat CES
A self-consistent field method is presented within density matrix functional theory. The computation...
Strongly-correlated materials are a rich playground for physical phenomena, exhibiting complex phase...
A variety of quantum many-body methods have been developed for studying the strongly correlated elec...
We present a fully charge self-consistent implementation of dynamical mean field theory (DMFT) combi...
Contains fulltext : 168537.pdf (publisher's version ) (Open Access
Abstract The LDA+DMFT method is a very powerful tool for gaining insight into the physics of strongl...
We implement a user-friendly and open-source software package to describe electronic, vibrational, a...
We present a fully charge self-consistent implementation of dynamical mean field theory (DMFT) combi...
18 pages, 3 figures, proceedings of the conference on "Coincidence Studies of Surfaces, Thin Films a...
We review recent developments in electronic structure calculations that go beyond state-of-the-art m...
One of the great challenges of modern condensed matter theory is to develop reliable and practical m...
The main focus of this thesis is the detailed investigation of computational methods to tackle stron...
Substantial progress has been achieved in the last couple of decades in computing the electronic str...
Since the beginning of quantum mechanics, emergent many-body phenomena represent the grand-challenge...
A2. Electronic Structure Methods and Their Applications: no. A2-16 (invited)CASSCF (Complete Active ...
A self-consistent field method is presented within density matrix functional theory. The computation...
Strongly-correlated materials are a rich playground for physical phenomena, exhibiting complex phase...
A variety of quantum many-body methods have been developed for studying the strongly correlated elec...
We present a fully charge self-consistent implementation of dynamical mean field theory (DMFT) combi...
Contains fulltext : 168537.pdf (publisher's version ) (Open Access
Abstract The LDA+DMFT method is a very powerful tool for gaining insight into the physics of strongl...
We implement a user-friendly and open-source software package to describe electronic, vibrational, a...
We present a fully charge self-consistent implementation of dynamical mean field theory (DMFT) combi...
18 pages, 3 figures, proceedings of the conference on "Coincidence Studies of Surfaces, Thin Films a...
We review recent developments in electronic structure calculations that go beyond state-of-the-art m...
One of the great challenges of modern condensed matter theory is to develop reliable and practical m...
The main focus of this thesis is the detailed investigation of computational methods to tackle stron...
Substantial progress has been achieved in the last couple of decades in computing the electronic str...
Since the beginning of quantum mechanics, emergent many-body phenomena represent the grand-challenge...
A2. Electronic Structure Methods and Their Applications: no. A2-16 (invited)CASSCF (Complete Active ...
A self-consistent field method is presented within density matrix functional theory. The computation...
Strongly-correlated materials are a rich playground for physical phenomena, exhibiting complex phase...
A variety of quantum many-body methods have been developed for studying the strongly correlated elec...