Quantitative predictions of thermodynamic hysteresis: Temperature-dependent character of the phase transition in Pd–H
Journal article, 2022

The thermodynamics of phase transitions between phases that are size-mismatched but coherent differs from conventional stress-free thermodynamics. Most notably, in open systems such phase transitions are always associated with hysteresis. In spite of experimental evidence for the relevance of these effects in technologically important materials such as Pd hydride, a recipe for first-principles-based atomic-scale modeling of coherent, open systems has been lacking. Here, we develop a methodology for quantifying phase boundaries, hysteresis, and coherent interface free energies using density-functional theory, alloy cluster expansions, and Monte Carlo simulations in a constrained ensemble. We apply this approach to Pd–H and show that the phase transition changes character above approximately 400 K, occurring with an at all times spatially homogeneous hydrogen concentration, i.e., without coexistence between the two phases. Our results are consistent with experimental observations but reveal aspects of hydride formation in Pd nanoparticles that have not yet been accessible in experiment.

Phase coexistence

Thermodynamics

Strain energy

Hysteresis

Cluster expansion

Author

Magnus Rahm

Chalmers, Physics, Condensed Matter and Materials Theory

Joakim Löfgren

Chalmers, Physics, Materials and Surface Theory

Paul Erhart

Chalmers, Physics, Condensed Matter and Materials Theory

Acta Materialia

1359-6454 (ISSN)

Vol. 227 117697

Plastic Plasmonics

Swedish Foundation for Strategic Research (SSF) (RMA15-0052), 2016-05-01 -- 2022-06-30.

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Swedish Research Council (VR) (2020-04935), 2020-12-01 -- 2024-11-30.

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Swedish Research Council (VR) (2015-04153), 2016-01-01 -- 2019-12-31.

Analysis and Modelling Service for Engineering Materials Studied with Neutrons

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Computational Materials Design Of Transport Properties

Knut and Alice Wallenberg Foundation, 2015-07-01 -- 2020-06-30.

Areas of Advance

Nanoscience and Nanotechnology

Materials Science

Subject Categories

Physical Chemistry

Other Physics Topics

Condensed Matter Physics

Infrastructure

C3SE (Chalmers Centre for Computational Science and Engineering)

DOI

10.1016/j.actamat.2022.117697

More information

Latest update

12/21/2023