Atomistic modeling of functionalized magnetite surfaces with oxidation states

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Main Authors: Gürsoy, Emre, Meißner, Robert H., Vonbun-Feldbauer, Gregor B.
Format: Preprint
Published: 2025
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author Gürsoy, Emre
Meißner, Robert H.
Vonbun-Feldbauer, Gregor B.
author_facet Gürsoy, Emre
Meißner, Robert H.
Vonbun-Feldbauer, Gregor B.
contents Understanding the atomic structure of magnetite-carboxylic acid interfaces is crucial for tailoring nanocomposites involving this interface. We present a Monte Carlo (MC)-based method utilizing iron oxidation state exchange to model magnetite interfaces with tens of thousands of atoms, scales typically inaccessible by electronic structure calculations. Charge neutrality is ensured by the oxidation of Fe ions. The MC approach allows magnetite to adapt to its environment at interfaces without requiring interface-specific rescaling of force-field parameters. This enables a simple, versatile method. By comparing adsorption sites, layer distances, and bond lengths with results from electronic structure calculations and experiments, we validated the accuracy of our method. We found that the oxidation state distribution and, consequently, binding site preference depend on coverage and surface thickness, with a critical thickness signaling the transition from layered to bulk-like oxidation states. The method ensures seamless compatibility with popular biomolecular force fields providing transferability and simplifying the study of magnetite interfaces in general.
format Preprint
id arxiv_https___arxiv_org_abs_2503_03639
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Atomistic modeling of functionalized magnetite surfaces with oxidation states
Gürsoy, Emre
Meißner, Robert H.
Vonbun-Feldbauer, Gregor B.
Materials Science
Mesoscale and Nanoscale Physics
Understanding the atomic structure of magnetite-carboxylic acid interfaces is crucial for tailoring nanocomposites involving this interface. We present a Monte Carlo (MC)-based method utilizing iron oxidation state exchange to model magnetite interfaces with tens of thousands of atoms, scales typically inaccessible by electronic structure calculations. Charge neutrality is ensured by the oxidation of Fe ions. The MC approach allows magnetite to adapt to its environment at interfaces without requiring interface-specific rescaling of force-field parameters. This enables a simple, versatile method. By comparing adsorption sites, layer distances, and bond lengths with results from electronic structure calculations and experiments, we validated the accuracy of our method. We found that the oxidation state distribution and, consequently, binding site preference depend on coverage and surface thickness, with a critical thickness signaling the transition from layered to bulk-like oxidation states. The method ensures seamless compatibility with popular biomolecular force fields providing transferability and simplifying the study of magnetite interfaces in general.
title Atomistic modeling of functionalized magnetite surfaces with oxidation states
topic Materials Science
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2503.03639