We propose a scheme to construct predictive models for Hamiltonian matrices in atomic orbital representation from ab initio data as a function of atomic and bond environments. The scheme goes beyond conventional tight binding descriptions as it represents the ab initio model to full order, rather than in two-centre or three-centre approximations. We achieve this by introducing an extension to the atomic cluster expansion (ACE) descriptor that represents Hamiltonian matrix blocks that transform equivariantly with respect to the full rotation group. The approach produces analytical linear models for the Hamiltonian and overlap matrices. Through an application to aluminium, we demonstrate that it is possible to train models from a handful of s...
The analytic bond-order potentials (BOPs) are derived by systematically coarse graining the electron...
Symmetry considerations are at the core of the major frameworks used to provide an effective mathema...
Chemical bonding can be described using the density functional theory (DFT) framework as electronic ...
We propose a scheme to construct predictive models for Hamiltonian matrices in atomic orbital repres...
15 pages, 9 figures; included vacancy PDOS and restricted FCC or BCC training setsInternational audi...
A systematic method for building an extensible tight-binding model from ab initio calculations has b...
Molecular simulations allow to investigate the behaviour of materials at the atomistic level, sheddi...
Computational study of molecules and materials from first principles is a cornerstone of physics, ch...
Despite the past decades have witnessed many successes of machine learning methods in predicting phy...
To understand strongly correlated systems, we must confront the many-body problem. This is practical...
We present a first-principles-based (second-principles) scheme that permits large-scale materials si...
ABSTRACT: We discuss a general way to derive approximate molecular orbital (MO) methods starting fro...
Electronic structure calculations, such as those employing Kohn–Sham density functional theory or ab...
Determining the stability ofmolecules and condensed phases is the cornerstone of atomisticmodeling, ...
We have developed a descriptor named Orbital Field Matrix (OFM) for representing material structures...
The analytic bond-order potentials (BOPs) are derived by systematically coarse graining the electron...
Symmetry considerations are at the core of the major frameworks used to provide an effective mathema...
Chemical bonding can be described using the density functional theory (DFT) framework as electronic ...
We propose a scheme to construct predictive models for Hamiltonian matrices in atomic orbital repres...
15 pages, 9 figures; included vacancy PDOS and restricted FCC or BCC training setsInternational audi...
A systematic method for building an extensible tight-binding model from ab initio calculations has b...
Molecular simulations allow to investigate the behaviour of materials at the atomistic level, sheddi...
Computational study of molecules and materials from first principles is a cornerstone of physics, ch...
Despite the past decades have witnessed many successes of machine learning methods in predicting phy...
To understand strongly correlated systems, we must confront the many-body problem. This is practical...
We present a first-principles-based (second-principles) scheme that permits large-scale materials si...
ABSTRACT: We discuss a general way to derive approximate molecular orbital (MO) methods starting fro...
Electronic structure calculations, such as those employing Kohn–Sham density functional theory or ab...
Determining the stability ofmolecules and condensed phases is the cornerstone of atomisticmodeling, ...
We have developed a descriptor named Orbital Field Matrix (OFM) for representing material structures...
The analytic bond-order potentials (BOPs) are derived by systematically coarse graining the electron...
Symmetry considerations are at the core of the major frameworks used to provide an effective mathema...
Chemical bonding can be described using the density functional theory (DFT) framework as electronic ...