Unlocking the Power of Orbital-Free Density Functional Theory to Explore the Electronic Structure Under Extreme Conditions
arXiv:2601.23002 · doi:10.1063/5.0331238
Abstract
Recent advances in X-ray free-electron laser diagnostics have enabled direct probing of the electronic structure under extreme pressures and temperatures, such as those encountered in stellar interiors and inertial confinement fusion experiments, challenging theoretical models for interpreting experimental data. Kohn-Sham density functional theory (KSDFT) has been successfully applied to analyze experimental X-ray scattering measurements, but its high computational cost renders routine application impractical. Orbital-free DFT (OFDFT) is a substantially more efficient alternative, with computational cost scaling linearly with system size and a weak temperature dependence, yet it often lacks the accuracy required for electronic structure description. Overcoming this limitation, we present a non-empirical Kohn-Sham-assisted orbital-free density functional framework for calculations at extreme conditions, which enables efficient OFDFT simulations with KSDFT-level accuracy for electron densities, electron-ion structure factors, and equations of state across a broad range of conditions. Benchmark comparisons with quantum Monte Carlo data for dense hydrogen and validation against Rayleigh weight measurements of hot dense beryllium demonstrate the reliability of the framework and speedups of up to several hundred times compared with KSDFT. We further show that even at temperatures on the order of 100 eV, quantum non-locality remains essential for correctly describing the electronic structure of dense hydrogen.
References in corpus (17)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- First principles simulations of dense hydrogen
- Orbital-Free Density Functional Theory: Kinetic Potentials and Ab-Initio Local Pseudopotentials
- Towards accurate orbital-free simulations: a generalized gradient approximation for the non-interacting free energy density functional
- Nonlocal Pseudopotential Energy Density Functional for Orbital-Free Density Functional Theory
- The equation of state of partially ionized hydrogen and deuterium plasma revisited
- Time-dependent Orbital-free Density Functional Theory: Background and Pauli kernel approximations
- Accelerating Equilibration in First-Principles Molecular Dynamics with Orbital-Free Density Functional Theory
- From Density Response to Energy Functionals and Back: An ab initio perspective on Matter Under Extreme Conditions
- Model-free Rayleigh weight from x-ray Thomson scattering measurements
- Imposing Correct Jellium Response Is Key to Predict the Density Response by Orbital-Free DFT
- Nonlocal vs Local Pseudopotentials Affect Kinetic Energy Kernels in Orbital-Free DFT
- Nonlocal free-energy density functional for warm dense matter
- Enhancing the Efficiency of Time-Dependent Density Functional Theory Calculations of Dynamic Response Properties
- A Momentum-Resolved X-ray Thomson Scattering Benchmark of Electronic-Response Models in Warm Dense Aluminium
- Generalized density functional theory framework for the non-linear density response of quantum many-body systems