Nuclear Quantum Effects on Proton Diffusivity in Perovskite Oxides

Fuente: arXiv
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Hauptverfasser: Yamada, Shunya, Kanayama, Kansei, Toyoura, Kazuaki
Format: Preprint
Veröffentlicht: 2024
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author Yamada, Shunya
Kanayama, Kansei
Toyoura, Kazuaki
author_facet Yamada, Shunya
Kanayama, Kansei
Toyoura, Kazuaki
contents In the present study, the nuclear quantum effects (NQEs) on proton diffusivity in oxides were evaluated by molecular dynamics (MD) simulations with the quantum thermal bath (QTB) based on the Langevin dynamics. We employed the proton diffusion in barium zirconate (BaZrO3) with the cubic perovskite structure as the model system, in which protons migrate by rotation around single oxide ions and hopping between adjacent oxide ions. MD simulations with the standard classical thermal bath (CTB) and phonon calculations were also conducted to verify the conventionally used classical harmonic transition state theory (classical h-TST), in which the transition state theory (TST), the harmonic approximation, and the classical approximation are assumed. As a result, the h-TST are reasonable for the proton rotation, while significantly overestimate the activation energy and the pre-exponential factor of the jump frequency for the proton hopping. Furthermore, the classical approximation makes the proton jump frequencies close to linear in the Arrhenius plots, which should actually be nonlinear by the NQEs in the temperature range of 500-2000 K. This suggests the necessity of the treatment beyond the classical h-TST for accurate evaluation of the proton diffusivity in oxides even in the intermediate temperature range (573-873 K).
format Preprint
id arxiv_https___arxiv_org_abs_2411_12396
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Nuclear Quantum Effects on Proton Diffusivity in Perovskite Oxides
Yamada, Shunya
Kanayama, Kansei
Toyoura, Kazuaki
Materials Science
In the present study, the nuclear quantum effects (NQEs) on proton diffusivity in oxides were evaluated by molecular dynamics (MD) simulations with the quantum thermal bath (QTB) based on the Langevin dynamics. We employed the proton diffusion in barium zirconate (BaZrO3) with the cubic perovskite structure as the model system, in which protons migrate by rotation around single oxide ions and hopping between adjacent oxide ions. MD simulations with the standard classical thermal bath (CTB) and phonon calculations were also conducted to verify the conventionally used classical harmonic transition state theory (classical h-TST), in which the transition state theory (TST), the harmonic approximation, and the classical approximation are assumed. As a result, the h-TST are reasonable for the proton rotation, while significantly overestimate the activation energy and the pre-exponential factor of the jump frequency for the proton hopping. Furthermore, the classical approximation makes the proton jump frequencies close to linear in the Arrhenius plots, which should actually be nonlinear by the NQEs in the temperature range of 500-2000 K. This suggests the necessity of the treatment beyond the classical h-TST for accurate evaluation of the proton diffusivity in oxides even in the intermediate temperature range (573-873 K).
title Nuclear Quantum Effects on Proton Diffusivity in Perovskite Oxides
topic Materials Science
url https://arxiv.org/abs/2411.12396