Accurate and efficient calculation of atomic forces in solids with non-self-consistent hybrid functionals
Damian Contant, Maria Hellgren
Abstract
Hybrid functionals are routinely employed self-consistently within the generalized Kohn-Sham framework. The evaluation of the nonlocal Fock exchange operator makes hybrid functional calculations computationally expensive, in particular with plane-wave basis sets. Here, we investigate the advantages of non-self-consistent hybrid functional calculations, focusing on the evaluation of atomic forces. The analytical force terms that arise due to non-self-consistency are computed using density functional perturbation theory (DFPT), as implemented within the Quantum ESPRESSO distribution. A non-self-consistent hybrid force calculation thus consists of self-consistent DFPT calculations with a local or semi-local functional and a single evaluation of the Fock exchange operator. The overall computational cost is, thereby, reduced in general, especially for solids that require a dense Brillouin-zone sampling. Moreover, results for structural parameters are barely affected by self-consistency, and vibrational frequencies are typically agreeing within 0.5%, thus making non-self-consistent calculations an interesting alternative.
Create a lesson
Related papers
Divergence between long- and short-wavelength magnon damping in spinel ferrites
Christopher T. Parzyck, Octave Duros, Hari Paudyal et al.
An Atlas and Design Rules for Single- and Dual-Atom Alloys
Fabian Berger, Yicheng Wang, E. Charles H. Sykes et al.
Epitaxial inversion of spontaneous polarization in ε-Ga2O3
Yan Wang, Zhigao Xie, Weihua Tang et al.
Gauge-including neural-network quantum Monte Carlo for molecules in magnetic fields
Chengye Lü, Weizhong Fu, Xin-gao Gong et al.
Photoresponse properties of single-crystalline thick film based on high-entropy topological insulator (Bi3/4Sb1/4)2(Te2/5Se2/5S1/5)3
Alexei Vasilev, Marina Zhezhu, Oleg Ivanov
Adaptive Substrate Support Based on Thin-Film Piezoelectric Actuators
Ertuğ Şimşek, Bas Jansen, Marcelo Ackermann et al.