Kersti Hermansson

Uppsala University
Country flag
Sweden

Research Interests

Explore related searches

Contact this professor

LinkedIn
ORCID
Google Scholar

Articles (15)

H2O2(s) and H2O2·2H2O(s) crystals compared with ices: DFT functional assessment and D3 analysis

The H2O and H2O2 molecules resemble each other in a multitude of ways as has been noted in the literature. Here, we present density functional theory (DFT) calculations for the H2O2(s) and H2O2·2H2O(s) crystals and make selected comparisons with ice polymorphs. The performance of a number of dispersion-corrected density functionals—both self-consistent and a posteriori ones—are assessed, and we give special attention to the D3 correction and its effects. The D3 correction to the lattice energies is large: for H2O2(s) the D3 correction constitutes about 25% of the lattice energy using PBE, much more for RPBE, much less for SCAN, and it primarily arises from non-H-bonded interactions out to about 5 Å.The large D3 corrections to the lattice energies are likely a consequence of several effects: correction for missing dispersion interaction, the ability of D3 to capture and correct various other kinds of limitations built into the underlying DFT functionals, and finally some degree of cell-contraction-induced polarization enhancement. We find that the overall best-performing functionals of the twelve examined are optPBEvdW and RPBE-D3. Comparisons with DFT assessments for ices in the literature show that where the same methods have been used, the assessments largely agree.

Year:

2023

Toward an efficient f-in-core/f-in-valence switchable description for DFTB calculations of Ce 4f states in ceria

A computational protocol is developed for efficient studies of partially reduced redox-active oxides using the self-consistent charge density functional tight-binding method. The protocol is demonstrated for ceria, which is a prototypical reducible oxide material. The underlying idea is to achieve a consistent (and harmonized) set of Slater–Koster (SK) tables with connected repulsive potentials that enable switching on and off the in-valence description of the Ce 4f states without serious loss of accuracy in structure and energetics. The implicit treatment of the Ce 4f states, with the use of f-in-core SK-tables, is found to lead to a significant decrease in computational time. More importantly, it allows for explicit control of the oxidation states of individual Ce atoms. This makes it possible to “freeze” the electronic configuration, thereby allowing the exploration of the energetics for various meta-stable configurations. We anticipate that the outlined strategy can help to shed light on the interplay between the size, shape, and redox activity for nanoceria and other related materials.

Year:

2023

Collaborators (7)

Alexander Lyubartsev

Professor

Stockholm University

SWEDEN

José Romero

-

PORTUGAL

Peter Broqvist

Uppsala University

SWEDEN

Yunqi Shao

Uppsala University

SWEDEN

Arghya Bhowmik

Associate Professor at Technical University of Denmark

Technical University of Denmark

DENMARK

Paulo Limão-Vieira

Professor of Molecular Physics (Full Professor)

Universidade de Aveiro

PORTUGAL

Lorenzo Agosta

Uppsala University

SWEDEN
Social connections

How do I reach out?

Sign in for free to see their profile details and contact information.

Meet Kite AI