A new generation of effective core potentials: Selected lanthanides and heavy elements II
arXiv:2505.18100 · doi:10.1063/5.0285320
Abstract
We present a new set of correlation-consistent effective core potentials (ccECPs) for selected heavy , , , and -block elements significant in materials science and chemistry (Rb, Sr, Cs, Ba, In, Sb, Pb, Ru, Cd, La, Ce, and Eu). The ccECPs are designed using minimal Gaussian parameterization to achieve smooth and bounded potentials. They are expressed as a combination of averaged relativistic effective potentials (AREP) and effective spin-orbit (SO) terms, developed within a relativistic coupled-cluster framework. The optimization is driven by correlated all-electron (AE) atomic spectra, norm-conservation, and spin-orbit splittings, with considerations for plane wave cut-offs to ensure accuracy and viability across various electronic configurations. Transferability of these ccECPs is validated through testing on molecular oxides and hydrides, emphasizing discrepancies in molecular binding energies across a spectrum of bond lengths and electronic environments. The ccECPs demonstrate excellent agreement with AE reference calculations, attaining chemical accuracy in bond dissociation energies and equilibrium bond lengths, even in systems characterized by substantial relativistic and correlation effects. These ccECPs provide accurate and transferable framework for valence-only calculations.
17 pages, 17 figures and 5 tables
References in corpus (8)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- Quantum ESPRESSO toward the exascale
- A New Generation of Effective Core Potentials for Correlated Calculations
- Correlation consistent effective core potentials for late 3d transition metals adapted for plane wave calculations
- Electronic structure of -RuCl by fixed-node and fixed-phase diffusion Monte Carlo methods
- Accurate thermochemistry of covalent and ionic solids from spin-component-scaled MP2
- Performance assessment of the effective core potentials under the Fermionic neural network: first and second row elements