Cubic-Scaling All-Electron GW Calculations with a Separable Density-Fitting Space-Time Approach.
Ivan DucheminXavier BlasePublished in: Journal of chemical theory and computation (2021)
We present an implementation of the GW space-time approach that allows cubic-scaling all-electron calculations with standard Gaussian basis sets without exploiting any localization or sparsity considerations. The independent-electron susceptibility is constructed in a time representation over a nonuniform distribution of real-space locations {rk} optimized within a separable resolution-of-the-identity framework to reproduce standard Coulomb-fitting calculations with meV accuracy. The compactness of the obtained {rk} distribution leads to a crossover with the standard Coulomb-fitting scheme for system sizes below a few hundred electrons. The needed analytic continuation follows a recent approach that requires the continuation of the screened Coulomb potential rather than the much more structured self-energy. The present scheme is benchmarked over large molecular sets, and scaling properties are demonstrated on a family of defected hexagonal boron-nitride flakes containing up to 6000 electrons.
Keyphrases
- density functional theory
- molecular dynamics
- molecular dynamics simulations
- monte carlo
- solar cells
- visible light
- healthcare
- primary care
- single molecule
- electron transfer
- wastewater treatment
- clinical trial
- quantum dots
- open label
- quality improvement
- risk assessment
- gold nanoparticles
- climate change
- reduced graphene oxide
- neural network